Showing posts with label hyperosmia. Show all posts
Showing posts with label hyperosmia. Show all posts

Friday, February 10, 2023

Hyper-Hypo-Nose


Sounds like a big deal. Also sounds like a great explanation for the phantom "Iso E Super" anosmia that isn't a full anosmia.

Researchers reveal an added layer of nuance in our sense of smell
Jan 2023, phys.org

They've discovered something called a depolarization lock to add to the standard combinatorial coding model used for odor detection, and it turns off the receptors when presented with high concentrations of an odor. 

You might already be familiar with this phenomenon for odors like violet and hydrogen sulfide (H2S). In the case of H2S, this receptor-deactivating behavior can be life-threatening, which is why you're supposed to wear a supplemental gas monitor, in addition to your nose, when entering areas suspected to contain high concentrations of the gas. 

^This write-up does a good job of explaining the fruit fly experiment that led to this discovery, as well as possible reasons why this would be needed for olfaction. 

via UC Santa Barbara: David Tadres et al, Depolarization block in olfactory sensory neurons expands the dimensionality of odor encoding, Science Advances (2022). DOI: 10.1126/sciadv.ade7209


Post Script:
In addition to Iso E Super, Hedione is another perplexing odorant that's in almost every fragrance formulation from floor cleaners to face cream, and yet most people can't actually smell it. Well, you can smell when it's NOT there, but you can't smell when it is. (Old post mentioning Hedione)

And if I'm reading this correctly, it sounds like someone with a hypersensitive nose might be more likely to lose their sensitivity altogether. I seem to have some kind of hyperosmia myself, and yet when I go out to sample perfume, I often can't smell anything at all. Take the same perfume, put it on a strip of paper and leave it on a table in my house for the next 3 weeks, and I will smell the whole bouquet revealed one at a time as the mixture breaks down. The theory being that if you're hypersensitive to a specific odorant, or all odorants for that matter, your "depolarization lock" will kick in at low concentrations. 

Post Post Script:
Hella synonyms for the musky odorant referred to above, in fact so many that I just wanted to list them here: Iso E Super, Tetramethyl acetyloctahydronaphthalenes is a synthetic ketone fragrance also known as octahydrotetramethyl acetophenone (OTNE) and by other commercial trade names such as: Iso E Super, Iso Gamma Super, Anthamber, Amber Fleur, Boisvelone, Iso Ambois, Amberlan, Iso Velvetone, Orbitone, Amberonne. It is a synthetic woody odorant and is used as a fragrance ingredient in perfumes, laundry products and cosmetics.
-Hall, John B. & Sanders, James Milton, "Perfume composition and perfume articles containing one isomer of an octahydrotetramethyl acetonaphthone", issued 1975

Thursday, April 23, 2020

Normosmia Has No Name



I have really met my match. In the world of smell, where language is a game more than a utility, there is one group of researchers who have finally said f*** it. They took all the words out, smashed all the molecules together, presented a bunch of people with their sniff panel, and recorded the responses. (This study is from 2013, but still worth writing about, since this is pretty important point in smell science.)

And it worked. They found that we don't smell molecules; we smell mixtures of molecules. In their words: "The algorithm that worked best was one that treats the odor-mixture as a single value, rather than a bunch of values reflecting each of its components."

They also found that "Pleasantness is the primary odor dimension in human olfactory perception," but we already knew that.

The Study
They use mixtures of 1 to 43 different components, making each 191 mixture-pairs in total, each having 1433 physiochemical descriptors (via the Dragon dataset), and gave them to 48 people.

The Findings: Pairwise Distance Model for Predicting Odorant-Mixture Similarity
They pit the molecular mixtures against each other and have people rate their similarity.
Again, "We found that the mean pairwise Euclidean distance over all the descriptors of all mono-molecular components comprising any two mixtures was a poor predictor of perceptual similarity between the two mixtures." But it gets even better, because apparently they're saying that the weak predicting capacity is because the data is screwed up by the monomolecules' comparisons to themselves! Maybe I'm wrong here, but I think they're saying  people gave different ratings for the same pairs of molecules at different times in the test, and those ratings changed so much from time to time, that they make the model no good.

The Findings: Angle Distance Model for Predicting Odorant-Mixture Similarity
This is the meat of the study. They came up with a statistical regime to turn the odor mixtures into a perceptual whole, that way it could be manipulated as if they it was an individual odor.

Just about every smell-science experiment like this will use odors that have been very carefully isolated – single molecules with single names (let's not kid anyone here, any particular molecule can have a dozen different names, from the local vernacular to the formalized IUPAC designation). The point is that molecules are typically isolated. Because science likes that. Lumping molecules together is messy. But that's also how we interface odors in the real world.

So they made this study more like the real world. They take all the physiochemical components of each molecule, add them together, and divide by the norm. That makes the mixture-odor as if it were a single odor, with a single vector (a single point in multi-dimensional odor-space). And this was the model that worked.

If you take its higher logical plateau, you end up with Olfactory White, one of the most mindbending osmological facts you'll ever comprehend: if you add enough molecules together, it doesn't make "brown paint" like colors do, it makes the mixture smell like nothing. Sure enough, these researchers found that the more components you add to the mixture, the closer the mixture gets to every other mixture (approaching 30 components).

A very important note here is that these odor mixtures were made to be all the same intensity. (This was done in the Olfactory White study as well.) Odors can have very different perceived intensities, and it's more than unlikely that this would ever happen in the wild. I can't help but get into some quick industrial hygiene here: the odor detection threshold for Ammonia is 50ppm; Acetone 100ppm, Trimethyl Amine (rotten fish) 0.0002ppm, Hydrogen Sulfide (rotten eggs) 0.005ppm.

Another extension of this study is maybe not so logical, but certainly an important point in smell science: we can't identify individual components of a mixture of only 4 components. You think you know what peanut butter smells like. And pineapples, and cinnamon. But if you add one more thing to that mixture, they all fall away, losing their identify on your great epithelial equalizer.

Conclusion
"The olfactory system treats odorant-mixtures as unitary synthetic objects, and not as an analytical combination of components."

Limitations
Being that they have three clear limitations, they should be included here:

1. The mixtures were intensity-normalized. This is not natural, because perceived odor-intensity changes drastically across odors. See mention above.

2. The odorants represent only a limited portion of olfactory perceptual space (not much we can do about that, since it's kind of infinite).

3. Many physicochemical features such as boiling point or vapor pressure remain unrepresented (they narrowed down the features from ~4,000 to 25).

Post Script
If you don’t know what the word steganography means, you do know: camouflage. Think about it – you don’t like broccoli? Blend it with enough other smells and you won’t even notice!

Olfactory White also its own name, and it’s called Laurax.

Notes
Semantic free approach to structure-odor prediction, general perceptual primaries rather than individual odorant primaries:
Predicting odor perceptual similarity from odor structure.
Snitz K, Yablonka A, Weiss T, Frumin I, Khan RM, Sobel N
PLoS Comput Biol. 2013; 9(9):e1003184.

Olfactory White:
Weiss T, Snitz K, Yablonka A, Khan RM, Gafsou D, et al. (2012) Perceptual convergence of multi-component mixtures in olfaction implies an olfactory white. Proc Natl Acad Sci USA 109: 19959–19964.

Odor Thresholds:
Gregory Leonardos , David Kendall & Nancy Barnard (1969) Odor Threshold Determinations of 53 Odorant Chemicals, Journal of the Air Pollution Control Association, 19:2, 91-95, DOI: 10.1080/00022470.1969.10466465

Thursday, July 4, 2019

The Olfactocracy


No, you don't have to eat your broccoli.

In an experiment that sounds like something we should have done like 70 years ago, we discover that all noses are not created equal. We all smell things differently, perceiving particular odor-features with varying levels of intensity.

I take it back; we didn't have the ability to do this kind of genetics testing 70 years ago. This new experiment showed that of the ~400 genes that control our ~400 different olfactory receptors, the variability is on high. In other words, let's say broccoli has a bunch of different chemicals that make it smell like "broccoli," and that there's a bunch of different receptor-genes that code for those chemicals -- you and I have slightly different versions of those receptors, which make one of us more sensitive to the bad parts of the smell, and maybe even the other of us more sensitive to the good parts.

What you get is one person who doesn't mind eating broccoli, and one of us who gets less ice cream after dinner everytime broccoli's on the menu.

What you also get is an entire sense which lacks in consensus. At the genetic level, what smells good to you won't necessarily smell good to me. So how do we agree?

As groundbreaking a breakthrough as this is, it doesn't even begin to scratch the surface as to how different each of our olfactory experiences are. Each one of us really does live an olfactory world all to ourselves.

We know then that genetics separates us, but it goes even further. Genetics is the hardwiring, but what about the softwiring? If you, for example, were force-fed broccoli while at the same time you're also forced to watch, with your eyes pried open, footage of people trying to peel the foil off a Nutella jar but it rips halfway through, then you might become traumatized by the smell of hot broccoli, and hence highly sensitive, and highly averse to it.

And the reverse can also happen. Don't like Flowerbomb? Wait until you have a few too many romantic encounters with a woman who wears it, and you'll change, you'll see.  That's softwiring. Humans are special because of our neural plasticity, so you can bet we're susceptible to these kinds of changes.

The final note here needs to be on the way we talk about smells. If we all smell a bit different, then how can we really communicate our experiences to each other with any fidelity? 


Notes:
C. Trimmer, A. Keller, N. R. Murphy, L. L. Snyder, J. R. Willer, M. H. Nagai, N. Katsanis, L. B. Vosshall, H. Matsunami, and J. D. Mainland
PNAS May 7, 2019 116 (19) 9475-9480; first published April 30, 2019

Heather Murphy for the New York Times, May 2019

Wednesday, September 21, 2016

Bacon

 AKA The Food Network

Bacon Flavor (2-Methoxy-4-methylphenol), surrounded by all the other flavors that use that same chemical-flavor; note that it's slightly modified for ease of viewing. 
There is only one chemical used to make the flavor of bacon.

To put it another way, the chemical that is used to make 'bacon flavor' is also used to make 'vanilla', 'jasmine', and 'clove', among others (including whiskey, which for the reason of lexical discrepancies does not show up on the graph).

Take a minute to play with this network graph - a compendium of flavors and fragrances and the relationships between them, using Aldrich's catalog of over 1000 chemicals.
(check out a youtube tutorial on how to use the network graphs)

POST SCRIPT
 Not only does this seaweed taste like bacon, it looks like fine-sliced proscuitto.

Culinologist Jason Ball from Oregon State University’s Food Innovation Center (via University of Copenhagen’s Nordic Food Lab) and aquaculture researcher Chris Langdon from OSU Marine Science Center, July 2015