This only works on white patients, so if it actually becomes clinically useful it will be pretty controversial.
Photon transport through the entire adult human head
11–20 of 29 posts
Re: Photon transport through the entire adult human head
#12Is this likely to be less risk than xray or nmr mri for comparable imaging quality?
I don't think this can give a structural image, but not sure what this can be used whatsover. It is probably more comparable to fmri because the technique, applied on short source-detector paths, is usually showing fluctuations in oxygenation levels in the cortex, as proxy of brain activity, but in contrast to fmri it could not go deeper into subcortical structures of the brain.
Re: Photon transport through the entire adult human head
#13I can't figure out how they would collect depth information from the resulting photon pattern. I believe reflected photons are much more useful, by measuring how long in between signal and response you can get flight time which tells you depth. Of course I have no idea if infrared light reflects on anything in the brain.
Re: Photon transport through the entire adult human head
#14In standard fNIRS, a light source and a detector forming a channel have to be ~2-3cm apart. The light leaves the source, goes into the scalp in a banana shape due to refraction, and reaches the detector. The idea is that due to differential absorption of different wavelengths by oxygenated and deoxygenated haemoglobin, you can send 2 wavelengths and solving a 2x2 system gives you the fluctuations in oxygenated and deoxygenated haemoglobin in the tissue the light transversed. This is a proxy of brain activation in that area. If the neurons fire a lot, they consume more oxygen and the brain then sends more oxygen there, this is called Brain-oxygenation level depedent (BOLD) response. If the path length is too short, the light cannot get refracted deep enough to reach the cortex, so you do not measure brain. If it is longer, too much light is absorbed on the way and less signal reaches the detector. The researchers here try to detect light with source/detector diametrically opposite on the scalp, and they show they can. However, it is not clear what kind of application this can have. It was done under very restrictive conditions (subjects very light-skinned, no hair, 30 minutes recording). Moreover, an advantage of standard fNIRS is the high spatial specificity, and it is not clear how to actually translate the light intensity data in their case to brain activation (and probably it is going to be very noisy) as the light transverses all the head.
In any case, they are experimenting with a novel technique, more like a PoC that they can at least detect photons but nothing more than that, and we are probably far away from any potential applications, if any is even come out of this. But it could also lead to applications we cannot actually imagine right now. As for applying this to measure brain activity in the way current fNIRS and fMRI do, I am skeptical.
Re: Photon transport through the entire adult human head
#15Earlier quoted context omitted.
You could solve that by scanning across the skin, and immersing the side of the head and the detector in some kind of fluid that helps light transmission (avoids reflections on the skin), so you don't actually have to touch the skin.
inserting a medical light bulb in the pattients mouth will decrease the distance the light has to travel, and presumably it could be a high intensity "flash" tuned to conditions with very precisely known timing
Re: Photon transport through the entire adult human head
#16This uses near-infrared light, building on current techniques of using near-infrared light in shorter source/detector paths to measure fluctuations of oxygenated/deoxygenated haemoglobin on the cortex of the brain as a proxy of brain activity. The standard technique is called functional near-infrared spectroscopy, and is similar to fMRI but can only look into superficial brain tissue and not subcortical brain structu…
The X-rays in CT scans also transverse all the head. Would it be possible to use the same algorithms as CT to construct a 3D image with this tech?
Re: Photon transport through the entire adult human head
#17Re: Photon transport through the entire adult human head
#18Re: Photon transport through the entire adult human head
#19This uses near-infrared light, building on current techniques of using near-infrared light in shorter source/detector paths to measure fluctuations of oxygenated/deoxygenated haemoglobin on the cortex of the brain as a proxy of brain activity. The standard technique is called functional near-infrared spectroscopy, and is similar to fMRI but can only look into superficial brain tissue and not subcortical brain structu…
> Moreover, an advantage of standard fNIRS is the high spatial specificity, and it is not clear how to actually translate the light intensity data in their case to brain activation (and probably it is going to be very noisy) as the light transverses all the head. The X-rays in CT scans also transverse all the head. Would it be possible to use the same algorithms as CT to construct a 3D image with this tech?
No short term brain computer interface with optical techniques just yet.