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How big is the GIANT Squid Giant Axon?

With all the hubbub about the first ever video of an attacking giant squid in the wild about to unveiled, I started wondering about the giant axon of the giant squid... I mean it would be huge right?...



Giant Squid, Giant Axon? (source)
Squid are special creatures to neuroscientists. Specifically to neurophysiologists, who study the electrical activity of neurons.
Squid Axon location

Atlantic squid have this huge (1mm) amazing axon running down each side of their mantle which allowed for the first recordings of action potentials in the 1930s.

Here is a really nice 5 minute video showing how with (by today's standards) very crude techniques, the electrical signal could be recorded from these axons.


So the squid giant axon is neat, and modern neurophysiology would probably not exist with out it. But what about the GIANT squid giant axon? Wouldn't that be an electrophysiologist's dream?

If it scaled proportionally to say, mantle length, the 1foot long Atlantic squid with a 1mm diameter axon would become a 16 foot long GIANT squid with a 16mm giant axon.
Let's think about this for a minute, 16mm is about 5/8 of an inch. 

US coins for size reference
That is like the diameter of a dime! For those not familiar with US coins, it's like the size of a bead on a necklace... a big bead, like a nice-sized pearl. Basically HUGE considering that most axons in vertebrates are not even visible without a microscope.

However,before you all start running out to hunt the giant squid for its precious precious axon...the truth is that the giant squid does not have a super-giant dime-sized axon. The giant squid axon actually has a smaller diameter than the 'normal' squid axon.  Surprising right?
Do the giant squid just have more axons there, so they don't need one gigantic one? Or is this axon somehow magically myelinated (probably not)? Or does the giant squid just not need one?

First, let me explain that this information was pretty hard to come by and basically anecdotal. I watched a few dissections of giant squid. And while these were really amazing (look at the hooks on the colossal squid's tentacles!), they said very little about the giant axon or how it was modified in these larger animals.

hooks of the colossal squid tentacles, yikes! (source)
This information comes from a comment quoting JZ Young at a 1977 symposium describing his dissection of a 125cm (about 4 feet) long giant squid. I could not get access to this manuscript, so I have to trust the commenter with his quote:
“Everyone wants to know whether giant squids have giant giant fibres. We have no material of the central nervous system but some years ago I was able to dissect the stellate ganglion of an animal washed up at Scarborough in 1933 and sent to the British Museum. The mantle length was 125 cm. The nerves of the mantle muscles are arranged in this genus differently from any other I have seen. Those in the front part of the mantle arise from a relatively small stellate ganglion, in the usual way. The hinder part of the mantle, perhaps more than half of the whole, is suspended from a distinct median nerve, running with the fin nerve and giving off a series of branches to the mantle.
Each of the nerves arising from the ganglion contains one or two large fibres, ranging in diameter from about 80 micrometers in the more anterior ones to a maximum of 250 micrometers further back. The median nerve was further preserved but one fibre of about 250 micrometers could be seen. Two of the more posterior branches contained fibres of about 200 micrometers each. None of the nerves examined contained the exceptionally large fibres reported by Aldrich & Brown (1967). We may conclude that Architeuthis is not an especially fast-moving animal. This would agree with evidence that it is neutrally buoyant with a high concentration of ammonium ions in the mantle and arms (Denton, 1974).”
Young explains that the axon network is set up differently in the giant squid (Architeuthis). He reasons that because the axon is not especially large, it could only conduct so fast, and therefore the fast escape reflex which it causes in the normal squid is just not that fast in the giant squid. This sort of makes sense, in that the giant squid might not benefit from escape as much as the normal squid. The giant squid might be better served by having razor sharp teeth on its suckers or terrifying pain causing-hooks so it could fight away a predator. 

The biggest axon award goes to the Humboldt Squid which has an axon the 'size of spaghetti.'

And while the first ever video of a giant squid just came out, the first ever photographs from the wild were published in 2005.


© TheCellularScale


ResearchBlogging.orgKubodera T, & Mori K (2005). First-ever observations of a live giant squid in the wild. Proceedings. Biological sciences / The Royal Society, 272 (1581), 2583-6 PMID: 16321779


JZ Young, 1977 The Biology of Cephalopods Symposia of the Zoological Society of London #38

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Weisure Stress


Seems that the line dividing work and leisure is thinning. More people are finding themselves dealing with work issues beyond the so-called the 7 day a week boundary.

This trend is being called Weisure - a phrase that blends the words leisure and work literally as well as figuratively.

Some who live the weisure life don't mind the blurring of roles while others struggle with it. Sociologist, Dalton Conley, who coined the phrase weisure, thinks that the trend is a negative one. "We lose our so-called private sphere. There's less relaxing time to be our so-called backstage selves when we're always mingling work and leisure." Conley believes that economic anxiety is at the root of the weisure lifestyle. Financial concerns appear to be driving many of us to bend and blend work and home life - and even vacation time.

Though some people can balance weisure, others struggle to find time to relax. The fallout of this new way of living and working is the loss of precious down time, with research showing fewer people taking actual vacations. It appears that the lack of adequate rest, nutritional fuel and emotional breathers - what are often called personal recovery strategies, are at the heart of the weisure crisis. As Jim Loehr and Tony Schwartz demonstrate in The Power of Full Engagement,  managing energy, not time, is the key to health, happiness, and life balance.

If you're someone who is bending and blending work and leisure, know that stress and burnout can lead to weisure stress. If you can't learn on your own or through talking with friends or colleagues ways to manage this new way of living, talking with a mental health professional can offer help.


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On Selling and Over-Selling Science

Science!!! (source)
Science communication is a persistent topic of ... well communication. Who is responsible for communicating science? How can science be best communicated to the public? What can we to do stop sensationalist and misleading articles from controlling what findings are generally accepted in the public sphere?

All these questions rise up in science blogs and on twitter and then fade back into the background. Then something happens and a flurry of posts about communicating science float to the surface again.

I have decided to join this party, and have written a Guest Editorial at the Biological Bulletin.

It's called "On Selling and Over-Selling Science" and is about trying to find that perfect balance between communicating a scientific finding accurately and accessibly.

I'd love to hear new opinions on this. So feel free to follow the link and leave a comment about it here. 

© TheCellularScale

I was not able to use my 'blogging name' like Neuroskeptic was, so here is the article and my identity along with it:

ResearchBlogging.org
Evans RC (2012). Guest editorial on selling and over-selling science. The Biological bulletin, 223 (3), 257-8 PMID: 23264470


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Does a high fat diet lead to a less 'rewarding' life?

Some interesting research out of the University of Pennsylvania suggests that a high fat diet can disrupt dopamine signalling.

This high-fat fed rat sure looks happy to me (source)
As I briefly discussed during my SfN Neuroblogging binge, a high fat diet can alter dopamine levels in the brain. To expand on this, we'll look at new research on how exactly this might happen and which specific areas of the brain are affected.  

Vucetic et. al. (2012) tested the levels of dopamine-related gene expression (via mRNA) in the hypothalamus and the ventral tegmental area (VTA). The hypothalamus is important because it controls your levels of hunger as well as many other things. The VTA is important because it is the main source of dopamine to the ventral striatum (AKA the Nucleus Accumbens). The VTA-nucleus accumbens pathway is generally thought to signify 'reward' when it is activated. Sex, Drugs, Music, and lots of other 'pleasurable' activities all activate this pathway. So alterations in the dopamine levels here might change how 'rewarded' a person (or mouse in this case) feels in response to pleasurable stimuli.

So Vucetic et al., (2012) found that in the VTA, the levels of tyrosine hydroxylase ("TH", an enzyme indicative of how much dopamine can be made) and dopamine active transporter ("DAT", which gets rid of excess dopamine at the synapse) are both reduced in the mice eating the high fat diet.

Vucetic et al. (2012) Figure 1
By contrast, in the hypothalamus, TH and DAT are both increased due to the high fat diet.

So what does this mean? The authors point out that increased dopamine in the hypothalamus actually promotes eating. Consistent with this idea, the authors show that mice eating the high fat diet actually ate more frequently and ate more total food. Secondly, when there is less dopamine in the VTA, it is likely that a rewarding stimuli will seem less rewarding. 

In the author's words:
"Collectively, these behaviors have the potential to promote obesity in two distinct ways: (i) through an increase in food intake and (ii) by increasing the drive for palatable food, as the animal with a blunted response to palatable foods may seek and/or consume these food relatively more than a normal animal in order to reach the same rewarding response. "
So basically the mice aren't obese because the food they are eating is high fat, they are obese because they are eating MORE food. But of course, they are eating more food because the high fat diet makes them 'want' to eat more food, so the high fat diet is indirectly causing the weight gain.

It is truly a vicious cycle.

 *Note: They also look at epigenetic effects on the TH and DAT promoter DNA. If you are interested in that aspect of the study, comment and I can do a follow-up post explaining it, or you can just read the study for yourself, following the link below. 

© TheCellularScale

ResearchBlogging.org
Vucetic Z, Carlin JL, Totoki K, & Reyes TM (2012). Epigenetic dysregulation of the dopamine system in diet-induced obesity. Journal of neurochemistry, 120 (6), 891-8 PMID: 22220805

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Best Ways to Get Rid of Cellulite on Thighs and Legs!



(Image credit to Getty Images)



Thighs, hips and buttocks are some common sites of the body where cellulite usually occurs. But sometimes it also can be found on the skin of legs, breasts, upper arms, and even lower abdomen. The name of ‘cellulite’ may sound like a certain medical condition, but actually it is nothing more than fat beneath your skin. The big question, can you get rid of it?
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Cellular Recap of 2012 #2: favorites

As promised, here are my favorite posts from each month.


January: The Human Neuron" not so special after all?

Butti C, Santos M, Uppal N, & Hof PR (2011). Von Economo neurons: Clinical and evolutionary perspectives. Cortex; a journal devoted to the study of the nervous system and behavior PMID: 22130090

February: If you give a mouse a placebo...

Wise RA, Wang B, & You ZB (2008). Cocaine serves as a peripheral interoceptive conditioned stimulus for central glutamate and dopamine release. PloS one, 3 (8) PMID: 18682722 

March: Plant neurons: Sensation and Action in the Venus Flytrap

Benolken RM, & Jacobson SL (1970). Response properties of a sensory hair excised from Venus's flytrap. The Journal of general physiology, 56 (1), 64-82 PMID: 5514161

Volkov AG, Adesina T, & Jovanov E (2007). Closing of venus flytrap by electrical stimulation of motor cells. Plant signaling & behavior, 2 (3), 139-45 PMID: 19516982 

Forterre Y, Skotheim JM, Dumais J, & Mahadevan L (2005). How the Venus flytrap snaps. Nature, 433 (7024), 421-5 PMID: 15674293

April: Real or Not Real? Neurotorture

Kindt M, Soeter M, & Vervliet B (2009). Beyond extinction: erasing human fear responses and preventing the return of fear. Nature neuroscience, 12 (3), 256-8 PMID: 19219038

May: Dendrites of Direction

Kim IJ, Zhang Y, Yamagata M, Meister M, & Sanes JR (2008). Molecular identification of a retinal cell type that responds to upward motion. Nature, 452 (7186), 478-82 PMID: 18368118

Kay JN, De la Huerta I, Kim IJ, Zhang Y, Yamagata M, Chu MW, Meister M, & Sanes JR (2011). Retinal ganglion cells with distinct directional preferences differ in molecular identity, structure, and central projections. The Journal of neuroscience : the official journal of the Society for Neuroscience, 31 (21), 7753-62 PMID: 21613488



June: What do Mirror Neurons look like?

Kraskov A, Dancause N, Quallo MM, Shepherd S, & Lemon RN (2009). Corticospinal neurons in macaque ventral premotor cortex with mirror properties: a potential mechanism for action suppression? Neuron, 64 (6), 922-30 PMID: 20064397

Casile A, Caggiano V, & Ferrari PF (2011). The mirror neuron system: a fresh view. The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry, 17 (5), 524-38 PMID: 21467305 


July: The Shape of a Memory

Blackiston DJ, Silva Casey E, & Weiss MR (2008). Retention of memory through metamorphosis: can a moth remember what it learned as a caterpillar? PloS one, 3 (3) PMID: 18320055


August: How to Build a Neuron: Step 1

Marx M, Günter RH, Hucko W, Radnikow G, & Feldmeyer D (2012). Improved biocytin labeling and neuronal 3D reconstruction. Nature protocols, 7 (2), 394-407 PMID: 22301777 

September: Taste cells in weird parts of your body

Finger TE, & Kinnamon SC (2011). Taste isn't just for taste buds anymore. F1000 biology reports, 3 PMID: 21941599
 
 October: Can you turn a rat gay? 

Triana-Del Rio R, Montero-Domínguez F, Cibrian-Llanderal T, Tecamachaltzi-Silvaran MB, Garcia LI, Manzo J, Hernandez ME, & Coria-Avila GA (2011). Same-sex cohabitation under the effects of quinpirole induces a conditioned socio-sexual partner preference in males, but not in female rats. Pharmacology, biochemistry, and behavior, 99 (4), 604-13 PMID: 21704064


 November: Growing 3D cells 

Labour MN, Banc A, Tourrette A, Cunin F, Verdier JM, Devoisselle JM, Marcilhac A, & Belamie E (2012). Thick collagen-based 3D matrices including growth factors to induce neurite outgrowth. Acta biomaterialia, 8 (9), 3302-12 PMID: 22617741

December: Cortical spine growth and learning how to eat pasta

Fu M, Yu X, Lu J, & Zuo Y (2012). Repetitive motor learning induces coordinated formation of clustered dendritic spines in vivo. Nature, 483 (7387), 92-5 PMID: 22343892

© TheCellularScale

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A cellular 2012

It's been an exciting first year of blogging here at The Cellular Scale.
Glowing Neuron
Let's take a look back at the Cellular year, shall we?

I am going to do this two ways: Today I'll post the first sentence of the first post of each month from this blog as is a blogging tradition. Next post, I'll list my personal favorite posts from each month.

January: "Hello and welcome to The Cellular Scale."

February: "Food smells better when you're hungry, right?"

March: "Another adventure out side the "cellular neuroscience" walls for The Cellular Scale."

April: "I love reading other blog posts about ridiculous scientific (and unscientific) claims."

May: "How do you build a virtual environment for a worm?"

June: "Andrew Huxley is one of the founders of both modern electrophysiology and  computational neuroscience, and is consequently a personal hero of mine."

July: "...toward preventing PTSD symptoms."

August: "Zebra finches are a popular model for language learning because unlike most research animals which may have instinctual vocalizations, zebra finches (the male ones at least) learn their signature song from experience."

September: "I have always believed that scientific research is another domain where a form of optimism is essential to success: I have yet to meet a successful scientist who lacks the ability to exaggerate the importance of what he or she is doing, and I believe that someone who lacks a delusional sense of significance will wilt in the face of repeated experiences of multiple small failures and rare successes, the fate of most researchers"     -Daniel Kahneman

October: "It's about to get really neuro-heavy here at The Cellular Scale because of the impending Society for Neuroscience annual conference."

November: "Time to get back to Answering Your Questions."

December: "Seriously."


© TheCellularScale


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