Showing posts with label excessive and potentially hazardous brain scanning in neuroscience research. Show all posts
Showing posts with label excessive and potentially hazardous brain scanning in neuroscience research. Show all posts

Saturday, November 8, 2025

No, You Can't Turn Memories On or Off in Mice, Nor Can You Do "Mind Captioning"

On the site NeuroscienceNews.com you can frequently find stories making unfounded boasts about the activities of neuroscientists. An example of the misleading stories we sometimes see on this site is discussed in my post here.  The latest example of an untrue headline at the site is the false headline "Epigenetic Switch to Turn Memories On and Off Created" The article makes these untrue claims: 

"Researchers have shown for the first time that flipping an epigenetic 'switch' in specific memory-holding neurons can directly alter memory strength. By targeting the gene Arc—which helps neurons adjust their connections—scientists used CRISPR-based tools to either boost or silence its activity in engram cells within the hippocampus. Silencing Arc blocked memory formation, while activating it strengthened recall, even days later, and these effects were reversible." 

The claims are untrue because the research being referred is an example of very low-quality science, being guilty of multiple examples of Questionable Research Practices.  It's a paper called "Cell-type- and locus-specific epigenetic editing of memory expression" which you can read here.

We have the same defects so typically found in rodent research on memory:

  • The study group sizes are way too small, between 3 and 12, and never greater than 12, with the average study group size being only about 7 rodents. No study of this type of this type should be taken seriously unless it used at least 15 or 20 animals per study group. 
  • Conclusions about how well animals recalled are based on the utterly unreliable technique of trying to judge "freezing behavior" in rodents. All studies using this technique are examples of junk science, for reasons I explain fully in the post here. So reliable evidence has not been presented in the study that the genetic or epigenetic fiddling produced any change in memory in rodents. 
  • The study made no use of any blinding protocol, an essential for a study like this to be taken seriously. 
If the authors of the study had bothered to act like good scientists and do a sample size calculation, they would have found out how ridiculously inadequate were the sample sizes they used. They confess their failure to do such a thing, and offer a ridiculous excuse, when they say this: " For in vivo experiments, no statistical methods were used to predetermine sample sizes, but the number of animals used in each experiment is similar to those reported in previously published engram studies." This is like saying, "I didn't pay my income taxes, but it's okay because none of my friends paid their income taxes." It is well-known that grossly inadequate and insufficient study group sizes are an epidemic within cognitive neuroscience studies involving rodents, and that the use of such way-too-small sample sizes is more the rule than the exception. So you do nothing to excuse yourself for failing to do a sample size calculation by saying that the sample sizes you used were comparable to those done by other published studies like the one you did. 

Every use of the phrase "engram cell" in the paper is unjustified. No scientists have ever presented  convincing evidence that any such thing as an "engram cell" exists. So-called "engram cells" are cells claimed to be parts of some area in a brain where a memory is stored, an area called an "engram."  No reliable evidence has ever been presented for the existence of either "engrams" or "engram cells." The type of studies claiming to have provided evidence for engrams are studies guilty of research practices as shoddy as the research practices in the paper "Cell-type- and locus-specific epigenetic editing of memory expression." 

When the paper makes the statement "In recent years, accumulating evidence has shown that memories are in part encoded in sparse populations of defined brain cells, so-called engrams," it is making a statement that is very untrue. No such evidence has accumulated, because all of the studies claiming to have produced evidence for engrams were junk science studies guilty of methodological sins as bad as in the paper "Cell-type- and locus-specific epigenetic editing of memory expression." 

Another bogus boast found in the recent neuroscience news is an article discussing the reckless human brain scan study discussed in the paper here, entitled "Mind captioning: Evolving descriptive text of mental content from human brain activity." Unlike the rodent study above, which only harms or kills a few mice, the study here involves serious needless risks to human subjects, who were subjected to 17.1 hours of medically needless 3.0 T fMRI brain scanning. 

The study had six human subjects watch 17 hours of videos for which text captions had been written, while the subjects were having their brains scanned. The authors claimed that by some weird convoluted "witches' brew" method of analyzing brain scans (some maze-like method all-but-impossible to untangle), they were able to "evolve" the captions to make them better.  It's an example of very bad junk science, partially because of the very inadequate study group sizes, and the hopelessly convoluted analysis pipeline, involving multiple "black boxes" such as large-language models. 

No study like this should be taken seriously unless it uses at least 15 or 20 subjects per study group. But only six subjects were used. The authors confessed that they failed to do a sample size calculation to determine whether their study groups were adequate for a decent statistical power, stating, "The sample size was determined on the basis of prior fMRI studies with similar protocols (765)." Since it is is well-known that the use of way-too-small study group sizes is an epidemic in today's neuroscience research (more the rule than the exception) appealing to "prior fMRI studies with similar protocols" is no excuse at all for failing to do a sample size calculation. 

In the wikipedia.org article for Functional Magnetic Resonance Imaging, we read the troubling passage below:

"Genotoxic (i.e., potentially carcinogenic) effects of MRI scanning have been demonstrated in vivo and in vitro, leading a recent review to recommend 'a need for further studies and prudent use in order to avoid unnecessary examinations, according to the precautionary principle'."

2011 paper different from the 2009 paper quoted above states this:

"We observed a significant increase in the frequency of single-strand DNA breaks following exposure to a 3 T MRI...These results suggest that exposure to 3 T MRI induces genotoxic effects in human lymphocytes."

A more recent year 2024 study ("Evaluation of the Biological Effects of Exposures to Magnetic Resonance Imaging on Single-Strand DNA: An In-vivo Study") found similar results, finding that MRI scanners only half as powerful as 3T scanners can produce genotoxic effects.  It reported this:

"The DNA single-strand breaks were significant for all tested parameters in both MRI 1.5 T (p<0.01) and 3.0 T (p<0.001)....The percentage of cells destroyed in the group exposed to 3.0 T MRI was increased to 12.65 ± 1.0 after 10 minutes of exposure."

The younger a person is, the higher the risk of that person eventually getting cancer from long, unnecessary MRI scans. An experiment like this should never have used such absurdly long MRI brain scans of 17 hours, nor should it have used young subjects. All of the subjects were younger than 40, and one was only 22 years old. There is no reliable data showing the safety over decades of MRI scans of more than an hour. No one has studied whether experimental subjects getting long hours of brain scans have higher risks of cancer over a period of 20 or 30 or 40 years; and there is very much reason to fear that they do (the reasons being discussed in the quotes above)  Neuroscientists do not track the very long-term health of their human subjects, but instead follow a "scan 'em & forget 'em" policy.  Human subjects are being put at risk for the sake of parlor-trick poorly-designed low-quality studies such as the "Mind captioning" study, which don't give good evidence for anything, partially because of their "maze within a maze within a maze" designs, so cluttered up with black boxes, sneaky data injection backdoors,  and experimental "sleight of hand." 

reckless neuroscientist

Monday, August 11, 2025

The Reckless Foolishness of Brain-Scanning Healthy Babies in Neuroscience Experiments

 A recent article in Scientific American by neuroscientist Nick Turk-Browne is an article entitled "You Don't Remember Being a Baby, But Your Brain Was Making Memories."  The article provides no real evidence that brains create memories, and  its attempts to support such a claim are mostly references to junk science studies.  In a previous post, I documented the untruth of the article's claims that two people could not form memories because of damage to their hippocampus. Let us now look at other aspects of the article that are just as dubious and misleading. 

Turk-Browne makes this untrue claim: "Scientists were able to retrieve an otherwise forgotten memory by stimulating neurons in the hippocampus that had been active during an early experience." His only support for this untrue claim is a link to an interview with neuroscientist Tomas Ryan. In the interview Ryan claims, "We found out we could optically stimulate the engrams for forgotten memories -- and the memories were recalled." In the text of the interview that statement by Ryan has a link to Ryan's very low-quality paper "Engram Cells Retain Memory Under Retrograde Amnesia." That is a junk science paper guilty of several examples of bad research practices, such as the use of an unreliable method of trying to judge recall in rodents (the worthless "freezing behavior" method"), and also the use of way-too-small study group sizes such as only 8 mice or 10 mice. Contrary to the groundless boasts of Turk-Browne and Ryan, no evidence was produced by experiments of this type that a forgotten memory can be artificially reactivated.  

What goes on in poorly designed experiments of this type is that mice are brain-zapped using light stimulation (optogenetics), and scientists claim the mice are "freezing in fear" because they are recalling a memory of a fearful experience, one "artificially activated" by the optogenetic light stimulation. But it is known that such optogenetic stimulation by itself causes "freezing behavior." A science paper says that it is possible to induce freezing in rodents by stimulating a wide variety of regions. It says, "It is possible to induce freezing by activating a variety of brain areas and projections, including the hippocampus (Liu et al., 2012), lateral, basal and central amygdala (Ciocchi et al., 2010); Johansen et al., 2010;  Gore et al., 2015a), periaqueductal gray (Tovote et al., 2016), motor and primary sensory cortices (Kass et al., 2013), prefrontal projections (Rajasethupathy et al., 2015) and retrosplenial cortex (Cowansage et al., 2014).

So no actual evidence is being produced of an artificial evocation of a memory stored in a brain when you use optogenetic stimulation of a brain region. All that is going on is that mice are allegedly becoming more immobile while they are brain-zapped, which does not tell us anything about memory. I say "allegedly" because there are no standards when it comes to judging whether mice were more immobile when exposed to some stimulus, with the reports of immobility typically being subjective, unreliable ratings by observers who did not follow a blinding protocol and who are free to choose any time span for judging immobility (30 seconds, 60 seconds, 90 seconds, two minutes or three minutes), whichever time span best seems to support a claim of "higher freezing behavior." 

I later read a claim in the Scientific American article that shocked me. It was this statement: "My lab has been on a decade long quixotic adventure to study awake infants with functional magnetic resonance imaging (fMRI), a form of brain imaging that can measure activity from regions deep in the brain such as the hippocampus." When we examine the history of MRI scans, we see a history of overconfidence, and authorities dogmatically asserting that "MRI scans are perfectly safe," when they did not actually know whether they were perfectly safe. The 2009 study here ("Genotoxic effects of 3 T magnetic resonance imaging in cultured human lymphocytes") cautions about the use of a high-intensity("3T and above") MRI, and states that "potential health risks are implied in the MRI and especially HF MRI environment due to high-static magnetic  fields, fast gradient magnetic fields, and strong radiofrequency electromagnetic fields," also noting that "these results suggest that exposure to 3 T MRI induces genotoxic effects in human  lymphocytes," referring to effects  that may cause cancer. The experiment discussed below used just such a 3 T MRI scanner. 

There is a rule-of-thumb about things that may increase a person's risk of cancer. The rule is that the younger a person is, the more likely some possibly carcinogenic effect is to produce cancer in someone.  Some particular stimulus might give you a 1% greater chance of cancer per year. But if you are 75 years, that is very unlikely to cause cancer in you. Conversely, if you are ten years old, that stimulus might have a very substantial chance or likelihood of producing cancer in you, if it increases your chance of getting cancer by 1% per year. 

So the rule in medicine is: take the greatest caution to avoid exposing children to any possible cancer risk. We should then be horrified to hear of some neuroscientist subjecting infants to unnecessary fMRI scans. There is not merely a substantial cancer risk from fMRI scans to infants. There are also other risks. Less than 30 days ago someone was killed by an fMRI machine after being magnetically sucked into the machine.  In 2001 a six-year-old boy was killed by an fMRI machine after its powerful magnets caused an oxygen cannister to hit his head. 

MRI accidental deaths
Historical headlines of MRI deaths in the past

Turk-Browne tells us that he has conducted 400 fMRI sessions, making this sound like 400 experimental sessions with infants. None of the parents who allowed this should have agreed to allow such MRI scans on their infant children, unless there was a medical necessity for such work. Subjecting infants to potentially hazardous experiments sounds like  neuroscience research gone far astray, an example of morally reckless inanity.  

Turk-Browne makes an unfounded boast, claiming "A team at my lab led by Tristan Yates...used this method to discover that the infant hippocampus can store memories beginning around one year of age." The claim is untrue. The claim has a link to the very low-quality science paper "Hippocampal encoding of memories in human infants," co-authored by Turk-Browne.  You can read the paper here. The paper provides not the slightest evidence of any such thing as an encoding or storage of memory in the hippocampus or anywhere else. The study group sizes are only 13, too small for any reliable result to be claimed. 

The authors of the paper try to make use of an analysis of a "subsequent memory effect." That is an unreliable neuroscience method that is usually pure pareidolia. It works like this: you scan someone's brain when he is being exposed to some stimulus, and also scan the person's brain when that person is asked to recall that stimulus. (For example, you might scan a person's brain while he is looking at some word pair he is asked to memorize, and then scan the same person's brain when he is asked to recall the second word, given only the first.) Then a neuroscientist looks for some region of the brain that showed "superior activation" both during the exposure to the stimulus, and the recall of the stimulus. This is an example of noise-mining. Regions of the brain randomly undergo tiny fluctuations in activity. So anyone analyzing brain scans can always find some tiny little region that was, say, 1% more active during the exposure to the visual stimulus and the later recall of the stimulus. We would expect you to be able to find such regions even if brains do not store memories. Similarly, if I eagerly analyze rain puddles in Chicago when the New England Patriots are playing football and rain puddles in Chicago when the Kansas City Chiefs are playing football, I may be able to find some little part of Chicago where there was an increased number of rain puddles during both of these types of games. But that does nothing to show that such football games have any causal relation to rain puddles in Chicago. 

The paper "Identifying Causal Subsequent Memory Effects" reported that "we are unable to identify any signal that reliably predicts subsequent memory after adjusting for confounding variables, bringing into doubt the causal status of these effects." In other words, when properly analyzed in the fullest way, there was no evidence for any "subsequent memory effect." 

Any paper claiming a "subsequent memory effect" with any credibility would have to meet various rigorous standards:

(1) The paper would have to be a pre-registered paper dedicated to trying to confirm some very specific hypothesis related to a subsequent memory effect. 

(2) There would have to be a rigorous blinding protocol, to prevent some deal in which the scientists were guilty of "seeing what you are hoping to see." 

(3) The subjects would have to be old enough to follow instructions, so that you could reliably tell what seconds were the learning period (or exposure-to-stimulus) and what seconds were the recall-of-stimulus period. 

(4) Adequate study groups (probably of at least 30 subjects per study group) would be needed. 

(5) A sample size calculation would need to be done to show that the study had used a study group size large enough to produce a high statistical power such as 80%.

None of these things occurred in the low-quality science paper "Hippocampal encoding of memories in human infants," co-authored by Turk-Browne. There was no pre-registration of a hypothesis to be tested. No substantial blinding protocol was followed, but merely a very limited level of blinding subverted by rater suggestions (as described below), with apparently no blinding occurring for the brain scan analysis. The paper has no discussion of a detailed blinding protocol. The study group sizes were only 13. The subjects were not old enough to follow instructions, being mere babies. No sample size calculation was done.

 Turk-Browne and his colleagues attempt to derive some "subsequent memory effect" through some bizarre method in which they are trying to judge which stimulus a baby was looking at, and trying to guess whether a baby remembered a previously seen photo, based on which he looked at. It's methodological fumbling.  You can't reliably tell which of two photos a baby is looking at, nor does which photo a baby looks at tell you anything about what a baby is recalling.  

We read in the Supplemental Information document that judgments about which directions babies were looking in were made by human raters.  We read this description of the nonsensical procedure:

"Human coders labeled frames of the video recordings of infant gaze during the encoding and test trials as: looking center, right of center, left of center, off-screen (blinking or looking away), or undetected (out of the camera’s field of view or otherwise not visible, such as being blocked by the infant’s arm). During encoding trial frames, coders were instructed that the infant was 'probably looking at center' because there was only one image on the screen at center. During test trial frames, coders were instructed that the infant was 'probably looking left or right' because there were two images, left and right of center, respectively."

 Instead of simply judging objectively about which direction the babies were looking at, these "human coders" were pushed to judge in a particular way, like some baseball umpire getting a message in his earphone telling him "that was probably a strike" or "that was probably a ball." These instructions amount to a form of bias injection, and they mean none of the data about which direction the babies were looking at is reliable. Since none of that data is reliable, none of the claimed data about a "subsequent memory effect" is reliable. 

We read in the Supplemental Information file about shady statistical fooling around which sounds like "keep torturing the data until it confesses" shenanigans. Here is only a small part of the impossible-to-justify convoluted rigmarole that went on:

"We used nonparametric bootstrap resampling to test for statistical significance. Specifically, we resampled participants for the contrast of interest with replacement 1000 times and recalculated the average for each iteration. The P value was quantified as the proportion of iterations with the opposite sign of the original subsequent memory effect, doubled for a two-tailed test. This analysis was first performed across the full sample, then separately in median splits of lower and higher average familiarity preference groups and younger and older infant age groups. We similarly quantified age-group differences by: resampling participants from among the younger and older infants, respectively, with replacement; calculating the mean value for each age group; and then subtracting the younger group mean from the older group mean. Again, the P value was the proportion of 1000 iterations that were of the opposite sign as the original group difference, doubled for a two-tailed test. Finally, we tested for a continuous age effect by resampling participants with replacement and recalculating the Spearman’s rank correlation between the subsequent memory effect and age in months over the sampled bivariate data pairs. Again, the P value was calculated as the proportion of resampled coefficients with the opposite sign as the original age effect, doubled for a two-tailed test. In exploratory whole-brain analyses, we performed nonparametric group statistics using the randomise function in FSL."

keep torturing the data until it confesses

In the Scientific American article Turk-Browne speaks clearly about his ridiculous methodology when he says this: "If the infant looked longer at the photograph they had seen before, we labeled that image as remembered; otherwise, it was forgotten." That's an absurd procedure. You can't tell whether a baby remembered something by whether he looked longer at a picture on the left or the right, and human raters typically cannot even reliably tell which of two photos placed in front of him a baby is looking longer at. When later in the Scientific American article Turk-Browne claims that "the hippocampus was more active when infants viewed images that they seemed to remember," he is making a groundless statement based on his defective methodology, which provides no reliable data on what infants remembered in his experiments. 

The idea of "familiarity preference" made in the paper (the assumption that babies would be more likely to look at a photo they had seen before) is an idea the exact opposite of the "novelty preference" assumption in many mouse experiments done by neuroscientists, which assume that a rodent will be more likely to explore some compartment they have not explored before. The authors confess "we did not observe a familiarity preference at the group level," which is a confession that helps show how misguided the methods and design of the study was. In other words, judging from the whole data set gathered, babies do not have any tendency to look more at a photo they have seen before. This comes as no surprise to me, having co-raised academically high-scoring twin daughters who never paid any attention to anything on the TV screen until they were 20 months old or older. Figure 2 of the paper is laughable, being data gathered from only a single subject. 

The whole experiment is just a horrible-methodology mess of reckless infant endangerment inanity. Nothing has been learned about human memory from this nonsense. What has mainly happened is that some infants have been senselessly put at risk for the sake of a junk science paper. What percent (if any) of the babies endangered here will end up getting cancer because of their needless involvement in this methodological nonsense, because of the genotoxic effects of 3T MRI scanners mentioned in the scientific paper quoted above? We will not know for many years, if ever. The general rule of neuroscientists is  "scan them and forget them." Neuroscientists do not do long-term tracking of health problems arising over a lifetime from subjects who participated in experimental fMRI scanning.  

In the wikipedia.org article for Functional Magnetic Resonance Imaging, we read the troubling passage below:

"Genotoxic (i.e., potentially carcinogenic) effects of MRI scanning have been demonstrated in vivo and in vitro, leading a recent review to recommend 'a need for further studies and prudent use in order to avoid unnecessary examinations, according to the precautionary principle'."

A 2011 paper different from the 2009 paper quoted above states this:

"We observed a significant increase in the frequency of single-strand DNA breaks following exposure to a 3 T MRI...These results suggest that exposure to 3 T MRI induces genotoxic effects in human lymphocytes."

A more recent year 2024 study ("Evaluation of the Biological Effects of Exposures to Magnetic Resonance Imaging on Single-Strand DNA: An In-vivo Study") found similar results, finding that MRI scanners only half as powerful as 3T scanners can produce genotoxic effects.  It reported this:

"The DNA single-strand breaks were significant for all tested parameters in both MRI 1.5 T (p<0.01) and 3.0 T (p<0.001)....The percentage of cells destroyed in the group exposed to 3.0 T MRI was increased to 12.65 ± 1.0 after 10 minutes of exposure."

The supplemental information of the "Hippocampal encoding of memories in human infants" paper discussed above mentions an average MRI exposure time of 8 minutes using a 3T MRI scanner. Given what is reported in the year 2024 study quoted above, we have every reason to fear that genotoxic effects and cell damage may have occurred in the infants senselessly involved in this poorly designed study. 

paper tells us the following about the newer twice-as-powerful
3T MRI machines that have been replacing the older 1.5T MRI
machines, suggesting their magnetic fields are much stronger than
the strength needed to lift a car:

"The main magnetic field of a 3T system is 60,000 times
 the earth's magnet field. The strength of electromagnets
 used to pick up cars in junk yards is about the field strength 
of MRI systems with field strengths from 1.5-2.0T.
 It is strong enough to pull fork-lift tires off of machinery,
 pull heavy-duty floor buffers and mop buckets into
 the bore of the magnet, pull stretchers across the room
 and turn oxygen bottles into flying projectiles reaching
 speeds in excess of 40 miles per hour."   

I strongly advise all parents never to let their children participate in any brain scanning experimental study unless a doctor has told them that the brain scan is medically advisable solely for the health of the child.  I advise adults not to participate in any brain scanning experimental study unless they have read something that gives them warrant for believing that the experimenters are following best experimental practices (as experimental neuroscientists rarely do), and that there will not be a very high chance that the adults will be undergoing unnecessary health risks for the sake of some "bad practices" poorly designed "fishing expedition" experiment that does not advance human understanding.  If a neuroscientist looking for research subjects tells you that brain scans are perfectly safe, remember that many neuroscientists often dogmatically make claims that are unproven or doubtful, and often pretend to know things they do not actually know (see the posts of this site for very many examples). 

I also strongly advise anyone who participated in any brain scanning experiment to permanently keep very careful records of their participation, to find out and write down the name of the scientific paper corresponding to the study, to write down and keep the names of any scientists or helpers they were involved with, to permanently keep a copy of any forms they signed, and to keep a careful log of any health problems experienced by the person who had the brain scan.  Such information may be useful should such a person decide to file a lawsuit. 

Thursday, January 2, 2025

Most Subjects in Neuroscience Research Do Not Understand the Risks They Are Taking

Neuroscience research often involves risks to human subjects involved in that research. Different types of research involve different types of risk.

fMRI Risks

Many patients undergo medically unnecessary scanning in fMRI machines, purely for the sake of neuroscience research. Such scans involve substantial risks, which are discussed in my post "Poorly Designed Brain Scan Experiments Needlessly Put the Needy at Risk." One danger of fMRI scans is well-known: the risk of the very strong magnets used by such machines causing some metal object to be hurled at a high speed, causing injury or death.  In 2001 a six-year-old boy was killed in the US during an fMRI scan, when the machine turned an oxygen canister into a flying projectile.  There is always a risk of lingering psychological trauma when certain people are put in some noisy high-tech machine and told they must be silent and not move for a long time such as an hour. There is also the risk that the more powerful fMRI scans (and longer fMRI scans) may raise the risk of cancer in the person getting getting the scan.

The 2009 study here ("Genotoxic effects of 3 T magnetic resonance imaging in cultured human lymphocytes") cautions about the use of a high-intensity ("3T and above") fMRI, and states that "potential health risks are implied in the MRI and especially HF MRI environment due to high-static magnetic fields, fast gradient magnetic fields, and strong radiofrequency electromagnetic fields," also noting that "these results suggest that exposure to 3 T MRI induces  genotoxic effects in human  lymphocytes," referring to effects  that may cause cancer. There are very few studies comparing cancer rates in those who have had fMRI scans and those who have not had such scans. Now neuroscientists are starting to do neuroscience experiments on humans with more powerful fMRI scanners such as 7T scanners, which have potentially higher risks.  So claims by scientists that "fMRI scans are safe" are not candid about risks. It is entirely possible that every time someone has a long fMRI scan (as often done for neuroscience research) that he is increasing his lifetime risk of getting cancer. 

Claims that "fMRI scans are safe" are typically claims made based on short scans (such as 10 minutes) with 1.5T and 3T scanners, not claims based on hour-long scans often done in neuroscience research, and not claims based on scans with the higher-intensity 7T scanners. Neuroscience researchers often ask subjects to engage in multiple long scans, with the total scanning time as high as 3 hours or more. See here for an example in which subjects were unnecessarily scanned for almost 3 hours, and here for a poor-quality study in which subjects were unnecessarily scanned for 16 hours in a 3T MRI scanner.  See here for a discussion of how subjects were  scanned unnecessarily for 38 hours each in a 7T scanner (described as "ultra-high magnetic strength") to create an unnecessary database (of very dubious usefulness) tracking nothing other than how brains look when people were looking at different natural scenes. 

Scientists do not track the long-term health of subjects they have subjected to long fMRI scans. Their rule is "scan them and forget them." It often happens that things that were once not thought to be carcinogenic are later shown to be carcinogenic. For example, today I read that the US surgeon general is saying alcohol uses causes 20,000 deaths a year in the US. In the high school I attended students were forced to dissect cats, and the dead cats were stored in a vat of formaldehyde, which often got on the students' skin. We now know formaldehyde is a carcinogen. 

When we examine the history of fMRI scans, we see a history of overconfidence, and authorities dogmatically asserting that "fMRI scans are perfectly safe," when they did not actually know whether they were perfectly safe.  Not many years ago there arose the great "contrast agent" scandal.  Scientists began to learn that what are called "contrast agent" fMRI scans may not be so safe. In such "contrast agent" scans, a subject is given an injection that increases the visual contrast of the fMRI scan.  For a long time, the main substance in such an injection was gadolinium.  A mainstream cancer web site states, "Tissue and autopsy reports have also confirmed that gadolinium can accumulate in the brain and other organs." The results can be a health disaster, as described here. A 2019 Science Daily story says, "New contrast agent could make MRIs safer," letting us know that many of them previously were not so safe. On the same Science Daily web site, we read a 2017 news story with the title "MRI contrast agents accumulate in the brain."  A 2020 paper ("Side Effect of Gadolinium MRI Contrast Agents") says this:

"Until recently, it was believed that gadolinium is effectively cleared within 24 hours after intravenous injection, and that it does not have any harmful effects on the human body. However, recent studies on animals and analyses of clinical data have indicated that gadolinium is retained in the body for many years post-administration, and may cause various diseases."

Neuroscientists extensively used such contrast agents (as described here), very often putting human subjects at risk. typically for the sake of junk poorly designed studies falling far short of the best experimental practices. You can do a Google search for "gadolinium deposition" to learn more about this issue. 

The University of North Carolina publishes a template for an "Adult Consent Form" informed consent form, and the template has the selection below. I will boldface and underline two lines:

"As part of the MRl procedure you may receive a dye called gadolinium. Gadolinium makes it easier to see details on the MRI pictures. If you have any problems with your kidneys, you may be at risk for a condition called Nephrogenic Systemic Fibrosis or Nephrogenic Fibrosing Dermopathy (NSF). NSF has been reported to occur between 2 days and 18 months following injection of gadolinium. There is no known treatment for NSF. Some people have even died from this. Signs and symptoms of NSF may include:  burning, swelling, hardening or tightening of the skin, blood vessels and internal organs (heart, lungs, live; yellow spots on the white part of the eyes; joint swelling and stiffness; pain in the hip bones or ribs; muscle weakness."

Probably the great majority of people who underwent fMRI scans for neuroscience research and who ingested gadolinium were not informed so candidly about the risks, and only in later years did language so candid tend to commonly appear in such forms. 

Invasive Electrode Implantation Risks

Electrodes may be implanted in the brains of epilepsy patients to help determine the best way to do surgery for epilepsy. But the same person involved in doing such surgery may be doing neuroscience research, and may try to take advantage of the opportunity offered by implanting electrodes in a patient's brain.  That person may cause additional electrodes to be implanted in the patient's brain, electrodes that were not necessary for surgery evaluation. All electrode implantation comes with risks. 

A paper tells us the following:

"A meta-analysis of 2542 patients implanted with subdural grids for extraoperative monitoring prior to epilepsy resection, both with and without depth electrodes, the estimated pooled prevalence of pyogenic central nervous system infection was 2.3%, of intracranial hemorrhage was 4.0%, and of transient new neurological deficits was 4.6%, with 3.5% of patients requiring additional surgical procedures to manage adverse events. Similar complication rates were reported from a national hospital database in addition to an estimated 11.7% rate of cerebrospinal fluid leakage, a complication that often is unreported in published case series."

The paper also tells us that implanting electrodes may cause seizures, stating this:

"The primary risk of electrical stimulation mapping is provoking a seizure. This risk may depend significantly on technique; in a review of risks in intraoperative mapping for epilepsy surgery, the risk of seizure was 1.2% with the train-of-5 technique and 9.5% with the 60-Hz technique."

Transcranial Magnetic Stimulation Risks

Transcranial Magnetic Stimulation is a noninvasive technique in which the brain is bombarded by magnetism.  The technique is sometimes used in neuroscience research. A wikipedia.org article on the technique states the following:

 "Although TMS is generally regarded as safe, risks are increased for therapeutic rTMS compared to single or paired diagnostic TMS. Adverse effects generally increase with higher frequency stimulation. The greatest immediate risk from TMS is fainting, though this is uncommon. Seizures have been reported, but are rare. Other adverse effects include short term discomfort, pain, brief episodes of hypomania, cognitive change, hearing loss, impaired working memory, and the induction of electrical currents in implanted devices such as cardiac pacemakers."

The technique of Transcranial Magnetic Stimulation is a fairly new one, and no one has done has long-term studies on the topic of whether such TMS increases a person's risk of brain cancer, Alzheimer's disease or dementia.  If you accept the typical assumptions of neuroscientists about memory, you should tend to suspect that such stimulation might increase a person's risk of dementia. Zapping computers with magnetism is known to incur a severe risk of data loss. 

Transcranial Direct Current Stimulation Risks

Transcranial Direct Current Stimulation (tDCS) is a noninvasive technique in which the brain is bombarded by electricity. A scientific paper tells us this:

" Nevertheless, several papers have reported that, in tDCS, some adverse events persist even after stimulation. The persistent events consist of skin lesions similar to burns, which can arise even in healthy subjects, and mania or hypomania in patients with depression. Recently, one paper reported a pediatric patient presenting with seizure after tDCS, although the causal relationship between stimulation and seizure is not clear." 

The technique of Transcranial Direct Current Stimulation is a fairly new one, and no one has done long-term studies on the topic of whether such tDCS increases a person's risk of brain cancer, Alzheimer's disease or dementia.  If you accept the typical assumptions of neuroscientists about memory, you should tend to suspect that such stimulation might increase a person's risk of dementia.  Zapping computers with electricity is known to incur a severe risk of data loss.

The Charade and Farce of "Informed Consent"

Neuroscientists claim that the human subjects used for neuroscience research have given what they call "informed consent." However, there are very strong reasons for believing that a large fraction or most of the subjects in neuroscience experiments do not understand the risks they are taking.  Below are some of the reasons:

(1) Unclear "informed consent" documents.  A person participating in a neuroscience research study will be asked to sign a document called an Informed Consent document. Such documents are typically long, filled with jargon, and hard for the layman to understand. 

(2) "Informed consent" documents failing to candidly discuss all the risks.  A person participating in a neuroscience research study will typically be asked to sign a document that is not candid about all the risks involved, a document that fails to adequately inform the person about all the risks involved. The document may give the person false ideas about the risks involved. Some technique such as fMRI scanning may be described as "safe," which gives the impression that there is no risk; but as I discuss above, there are actually very substantial risks involved in fMRI scanning, particularly when it occurs for longer periods, with repeated scans, and higher-intensity scans such as 3T scans and 7T scans. So-called "informed consent" documents are full of "spin" designed to reassure the subject about the safety of the procedures he will be exposed to. Such "spin" often fails to adequately inform the subject of the risks he is taking. 

(3) "Informed consent" documents are frequently presented under situations in which the reader is discouraged from taking his time to read the document.  Anyone who has gone to a hospital emergency room or a very busy hospital may have experienced a situation under which "informed consent" documents are rather a charade or farce, because of a high degree of time pressure to sign the long documents as quickly as possible.  Lengthy fine-print forms are given to someone, with the clear impression given that he is expected to sign them very rapidly, rather than taking minutes to study and properly understand them.  For example, a doctor may come to a hospital room and give three pages of fine-print forms for a patient to sign, while impatiently waiting for an immediate signature. I don't know how often such dynamics occur in neuroscience research studies, but I would imagine that the same "hurry up and sign" dynamics frequently occurs. 

(4) No one ever verifies that the person reading the "informed consent" document is capable of reading and understanding a document of that type. So-called "informed consent" documents are typically written in college-level language. But studies indicate that roughly half of the US population cannot read well-enough to understand documents written in such language. A very sizable fraction of Americans have a native-language other than English, and a very large fraction of people whose native language is English never learned to read well-enough to understand language written like "informed consent" documents. It would be an easy task to verify that a subject can read and understand an "informed consent" document. You could ask them to read aloud a crucial part of the document, and then to summarize that part in his own words.  Scientists never do that. 

(5) Rarely does anyone ever verify that a subject spent adequate time reading an "informed consent" document. So-called "informed consent" documents are typically given to people, with some pressure for them to rapidly sign. Almost never does anyone verify that the person spent adequate time studying the document, a very easy thing to do. 

(6) Rarely does anyone ever verify that a subject properly understood the risks explained in an "informed consent" document. It would be very easy to verify that someone properly understood the risks explained in an "informed consent" document. You could simply give the person a one-page multiple-choice test, asking him about the contents of the document. Anyone failing to answer all of the answers correctly would be assumed to not understand the risks involved. Such tests are virtually never done. 

At the link here, we have a University of Michigan template for an "informed consent" document for a research study. It is ten pages of fine print, written at a reading level that most  or a large fraction of Americans will not be able to understand well.  The documents mentions an unusually long fMRI scan time of 1 to 3 hours, much longer than the average MRI scan (between 15 and 30 minutes). No mention is made of how strong the fMRI scanner will be (whether it will be 1.5 T, 3T or 7T).  The document fails to make any mention of the very real possibility of an increased cancer risk or dementia risk caused by the long scanning, which is small but real and significant in that long a scan. We have a document that will fail to cause most of its readers to understand the risk in the experimentation involved. The document has a profoundly misleading clause claiming "it is anticipated that at least 10,000 subjects will participate," tending to create a reassuring impression of very high numbers of people participating. The truth is that the vast majority of neuroscience experiments involve fewer than 20 human subjects, and a brain-scanning study of more than 50 people almost never occurs.

For all of these reasons and others, the "informed consent" procedures of neuroscience experiments are a charade and a farce.  We should assume that the majority of subjects in neuroscience experiments do not understand the risks they are taking. The very idea of a mere "informed consent" is a profoundly defective one. A more stringent standard would have to be followed in order for good morality to be practiced in neuroscience experiments on humans. You might call such a standard the standard of "risk-cognizant consent."

The idea of risk-cognizant consent would be to verify that a subject understood all of the risks involved in an experiment, not merely that he had been informed of such risks in a way that might well have failed to cause a good understanding of the risks. Here is how such a protocol of risk-cognizant consent might work. 

(1)  Consent documents would be carefully written according to a "plain English" standard.
(2) All risks would be candidly discussed, including known risks, and unknown risks that it might be reasonable to suspect the subject was incurring. 
(3) Before any subject was asked to sign such a document, his or her reading skills would be verified (for example, he might be asked to read the first paragraph aloud). 
(4) Anyone lacking very good reading skills would be offered the consent document in an audio form or video form, or would have the consent document read to him.
(5) It would be made clear that a test would be given on the content of the consent document, and that therefore it should be studied very carefully. 
(6) It would always be verified that the person had spent adequate time studying the written consent document or listening to the audio form of the document, without any of the nonsense going on in emergency rooms, where people are routinely given long documents and pressured to quickly sign them, with medical personnel routinely accepting signatures when people obviously had not taken adequate time to sign what they had written. 
(7) All persons signing such a document would then be given a ten-question multiple-choice test trying to determine how well they understood the information in the consent document. 
(8) Any persons failing to score very highly on such a test (such as scoring 9 out of 10 or higher) would be excluded from participation in the experimental study.

Following such a protocol would make it likely that the great majority of subjects in neuroscience research understood well the risks they were taking by participating in such research. It is not practical to follow this type of protocol in a rushed hurry-up environment such as a hospital emergency room.  But neuroscience experiments never have such a time factor. With neuroscience experiments, there is abundant available time to follow a morally responsible protocol such as the risk-cognizant standard I have described. A mere "informed consent" protocol is not an adequate standard for neuroscience experiments. 

Much of today's neuroscience research is morally questionable.  The research techniques followed are typically bad, with a very high occurrence of Questionable Research Practices such as way-too-small study group sizes, a lack of a detailed blinding protocol, a lack of pre-registration, and "make it up as go along" analytics following a "keep torturing the data until it confesses" approach.  Very often the most dubious and arbitrary computer programming post-processing is occurring, in which scientists senselessly contort the data in any way they please in order to twist the data into some desired form so that a discovery or "statistical significance" can be claimed. There is no benefit to society from such junk research, which causes much suffering and death to animals. 

The people who benefit from such neuroscientist busy work are  neuroscientists, who get to add to their count of published papers.  Serious risks are incurred in such experiments by the human subjects, who are often paid only "chump change" payments such as $20 an hour for the risks they endure. The people lured by such tiny payments are typically some of society's neediest, people in need of every little payment they can earn. Most of the subjects do not understand the risks they are taking, because of the problems like those discussed above. Most neuroscience research these days is of low quality, for reasons such as too-small study group sizes, lack of pre-registration, lack of control groups, and lack of a good blinding protocol. What we have here is mainly activity that is for the benefit of the few (neuroscience professors and their colleagues) at the expense of the many (tax payers who fund the junk research, readers who are misled by misleading claims flowing from the bad research, and research subjects undergoing substantial health risks). 

I advise all participants in neuroscience research to keep a permanent record of any document they signed, to collect the names of all participating scientists and the name or identifier of the research study, and to keep a careful record of any health complaints such participants have at any time in the future, whether physical or psychological. Such information may be useful in filing a law suit or claim trying to collect payment for damages inflicted. 

immoral neuroscience experiments

 Postscript: A paper tells us the following about the newer twice-as-
powerful 3T MRI machines that have been replacing the older 1.5T MRI
machines, suggesting their magnetic fields are much stronger than
the strength needed to lift a car:

"The main magnetic field of a 3T system is 60,000 times
 the earth's magnet field. The strength of electromagnets
 used to pick up cars in junk yards is about the field strength 
of MRI systems with field strengths from 1.5-2.0T.
 It is strong enough to pull fork-lift tires off of machinery,
 pull heavy-duty floor buffers and mop buckets into
 the bore of the magnet, pull stretchers across the room
 and turn oxygen bottles into flying projectiles reaching
 speeds in excess of 40 miles per hour."   

According to the paper here ("The effects of repeated brain MRI on
chromosomal damage") which 
judged genetic damage from 3T MRI scans, "While we do not report any change after a single MRI session, repeated exposure was associated with an increase in the frequency of chromosomal deletions." The paper "Genotoxic effects of 3 T magnetic resonance imaging in cultured human lymphocytes" found that chromosomal aberrations (CA) increased in proportion to the length of time someone had a 3T MRI scan. It says, "the frequencies of CAs in lymphocytes exposed for 0, 45, 67, and 89 min were 1.33, 2.33, 3.67, and 4.67 per 200 cells, respectively." Such chromosomal deletions and aberrations probably increase cancer risk, or the risk of equally devastating problems.

At the Courtois NeuroMod site here we have a page detailing frivolous-seeming datasets gathered by what seems like excessive and potentially hazardous brain scanning of subjects. For example, one of the datasets consists of "About ten hours of fMRI data per subject (N=6) while watching the following movies: Bourne Supremacy, The Wolf of Wall Street, Life documentary (twice), Hidden Figures ((twice)."  We see nine other datasets that sound just as frivolous, such as one that describes "About ten hours of fMRI data per subject (N=5) while watching the 6th season of the Friends TV show." One of the scientists involved in this project has announced the morally reckless idea of brain-scanning individual subjects for 600 hours. We read this in a paper by him: "The Courtois NeuroMod team will scan six subjects for about 100 hours per year in functional MRI, as well as 20 hours per year in MEG, for a duration of five years, totaling about 600 hours."  This is for some medically unnecessary project involving video games. 

An October 2024 article published by the US Department of Veteran Affairs  is entitled "Metal in MRI contrast agents may cause serious health problems."  We learn some shocking details suggesting neuroscience researchers may have been massively endangering their research volunteers:

"New Mexico VA Healthcare System researchers were part of a team of experts who revealed potential chronic health problems linked to magnetic resonance imaging (MRI) contrast agents.

Their review article compiled evidence that the metal gadolinium can remain in the body and lead to multiple conditions, such as kidney injury, debilitating joint and skin problems, and even fatal brain damage....A peculiar, devastating condition, systemic fibrosis, was first identified in 1997 in end-stage renal disease patients. Patients were afflicted with severe pain and a woody or cobblestone-like texture to the skin, as well as joint problems. Nephrologists identified gadolinium as the most significant risk factor in 2006. ...
Now it seems the gadolinium contrast agents have the potential for harm in other patients, not just those with impaired kidney function, based on evidence gathered by Wagner and his team. They said their findings have profound implications for patients experiencing symptoms associated with gadolinium exposure, such as brain fog, skin disorders, joint pain, and permanent disability.

The researchers also discovered gadolinium can stay in the body for a long time, possibly permanently, meaning patients may experience symptoms immediately after as little as one MRI contrast agent exposure or many years after exposure."

The article is discussing the 2024 paper "The safety of magnetic resonance imaging contrast agents," which you can read here. Below are some excerpts:

"Safety concerns with magnetic resonance imaging contrast agents arose when gadolinium was linked to the blight systemic fibrosis, a grievous infirmity (Grobner, 2006).... In addition to severe pain, the skin has been characterized as having a woody induration and cobblestoned. The disease is also associated with severely debilitating joint contractures....Gadolinium-based contrast agents are increasingly associated with cutaneous and systemic abnormalities in patients with normal renal function...Data mining of the United States Food & Drug Administration Adverse Event Reporting System corroborates that skin complications relate to most brands of magnetic resonance imaging contrast agents (Wang et al., 2023). As of 30 September 2023, 31,868 reactions were reported to the United States Food & Drug Administration Adverse Event Reporting System (Figure 2). The leading reaction group for all magnetic resonance imaging contrast agents is skin and subcutaneous tissue disorders (including nephrogenic systemic fibrosis)....Symptoms were skin thickening, 'like hard rubber,' hair loss, skin biopsy with fibrosis, and abnormal calcification on mammograms and x-rays....Acute kidney injury has also been temporally linked to gadolinium-based contrast administration....Neurotoxicity has been linked to magnetic resonance imaging contrast agents in rodent models and case reports (Rogosnitzky and Branch, 2016)....Known complications of gadolinium-based contrast agent administration include kidney damage (Leander et al., 1992Prince et al., 1996Sam et al., 2003Thomsen, 2004Akgun et al., 2006Briguori et al., 2006Ergun et al., 2006Elmstahl et al., 2007), nephrogenic systemic fibrosis, skin disorders, and sometimes permanent neurologic sequelae (including coma and death). Each dose of gadolinium is fraught with unanticipated risks.. .In humans, a single magnetic resonance imaging contrast agent exposure can trigger nephrogenic systemic fibrosis (Broome et al., 2007Thomsen et al., 2007Abraham et al., 2008Shabana et al., 2008Leyba and Wagner, 2019). When Dr. Sean Cowper (Professor of Dermatology, Yale School of Medicine) maintained a registry of nephrogenic systemic fibrosis cases, he noted that 46% of cases had just a single exposure....There are many reports of neurotoxicity induced by gadolinium (Table 2). Many case reports detail acute, subacute, and chronic complications (summarized in Supplementary Material). Invariably, these cases required escalation of care for life-threatening scenarios...The doses of magnetic resonance imaging contrast agent needed to induce severe neurologic manifestations (and sometimes death) are minute...Disinherited by the medical establishment, patients spend an eternal time in chronic symptomatic purgatory....Magnetic resonance imaging contrast agents cause kidney injury and gadolinium encephalopathy (sometimes fatal) and may lead to permanent gadolinium retention. Provider education regarding these known adverse events is critical, and informing patients of these risks and outcomes is essential."

Postscriptyear 2024 study ("Evaluation of the Biological Effects of Exposures to Magnetic Resonance Imaging on Single-Strand DNA: An In-vivo Study") found similar results, finding that MRI scanners only half as powerful as 3T scanners can produce genotoxic effects.  It reported this:

"The DNA single-strand breaks were significant for all tested parameters in both MRI 1.5 T (p<0.01) and 3.0 T (p<0.001)....The percentage of cells destroyed in the group exposed to 3.0 T MRI was increased to 12.65 ± 1.0 after 10 minutes of exposure."

As shown in its Table 1, the study found that with a 3.0T MRI scanner, the longer you scan, the more DNA damage is done. The reported damage after 40 minutes of 3.0T MRI scanning is given a numerical value of 57, which is nearly twice as high as the damage done after only 10 minutes of scanning (damage given a numerical rating of 32). A similar relation is reported in Table 4, using a different measure of damage.  Using that measure, 10 minutes of 3.0T MRI produces DNA damage given a numerical value of 12.66, but 40  minutes of 3.0T MRI produces almost twice-as-bad DNA damage given a numerical value of 22.38.  Any DNA damage tends to increase cancer risk. 

The 2022 paper here ("The effects of repeated brain MRI on
chromosomal damage") reports, "The total number of damaged cells increased by 3.2% (95% CI 1.5–4.8%) per MRI (Fig. 2d–h) (p < 0.001); this increase being higher during the first ten MRI sessions than during the last ten ones (p for interaction = 0.016)."