I will reblog this every time.
Literally this.
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Not today Justin
𩵠avery cochrane š©µ
hello vonnie
Aqua Utopiaļ½ęµ·ć®åŗć§čØę¶ćē“”ć
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⣠Chile in a Photography ā£
YOU ARE THE REASON

oozey mess

Discoholic šŖ©
Sweet Seals For You, Always
PUT YOUR BEARD IN MY MOUTH
KIROKAZE
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Cookie Run:Kingdom Official!

Love Begins

bliss lane
todays bird
almost home
seen from Brazil
seen from Singapore
seen from Azerbaijan
seen from Spain
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seen from Bangladesh

seen from Malaysia

seen from United States

seen from United States
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@rockpaperscience-blog
I will reblog this every time.
Literally this.
How long does someone have to be dead before itās considered archeology instead of grave robbing?
as an archaeologist, i find this a veRY AWKWARD QUESTION
Watch: A Texas mom took on textbook writers for erasing slavery ā and won.
@la-siren
Yes maāam. Go Mama.
Get it
Art Grown in a Petri Dish
by Claire Voon
A microbe-filled petri dish isnāt usually where one would expect to find art, but it turns out that cell colonies can form some pretty compelling visuals. Weāve already seen the potential of slime mold and the bacteria from Hans Ulrich Obristās nose, so itās only natural that the medium is growing (in more ways than one): this year, the American Society for Microbiology (ASM) launched its first Agar Art contest, inviting ASM members to get creative and paint with microorganisms within the framework of a petri dish. The societyannounced its winners last week, but we had some fun poking through the many submissions, which do show that yes, bacteria can be beautiful.
The honor of first place went to āNeurons,ā a vivid work of yellow and orange bacteria by molecular biologist Mehmet Berkmen and mixed media artist Maria Penil, who integrates biological shapes into her own work. āNYC Biome MAP,ā a glowing, grided representation of Manhattan, was runner-up, submitted by nonprofit community biolab Genspace. Created as part of this past IDEAS CITY Festival hosted by the New Museum, it is a crowdsourced work composed of multiple petri dishes, each prepared with stencils of city grids. Participants painted these with genetically engineered bacteria, modified with fluorescent protein so that they form a dazzling map under UV light.
Other standouts include a detailed portrait of French chemist and microbiologist Louis Pasteur rendered with a dark violet bacterium, a cosmic colony that resembles a piece of the night sky, and a five-dish homage to van Goghās āStarry Nightā that recreates the paintingās famous swirls out of infection-causing bacteria.
Images of the petri dishes will be on view this fall at an Agar Art Gallery event hosted by Microbes After Hours. We knew there was another reason why theyāre also called culture dishes.
see more photos at source pageĀ
*click the photo to read the caption with credits
Nobel Prize in Medicine 2015, Part 1: Tu Youyou and the Discovery of Artemisinin
Nobel Prize season has began, and with that will be a series of posts detailing the chemistry-related prizes that are awarded! Todayās post will be about one half of the Physiology/Medicine prize, awarded to Chinese pharmacologistĀ Tu Youyou for the discovery of the antimalarial drug artemisinin. This is the first natural science Nobel Prize awarded to a native mainland Chinese scientist. (Other awards have been given to scientists of Chinese descent that did their work in other countries.)
Tu Youyou (å± å¦å¦) was born in Ningbo, Zhejiang, China, in 1930 and graduated from the Department of Pharmaceutical Sciences at Peking University Medical School in 1955, and worked as a researcher at the China Academy of Chinese Medical Sciences afterwards. She participated in a secret government research program, Project 523, that aimed to discover new antimalarial drugs in an effort to aid North Vietnam in the Vietnam War.
The discovery process was guided by traditional Chinese herbal remedies found in ancient medical texts. One particularly effective remedy was found in āThe Handbook of Precriptions for Emergency Treatmentsā (čå¾ęåę¹), a medical text written in the 4th century: ātake one bunch of qinghao [Artemisia annua], soak in two sheng [~400 mL] of water, wring it out to obtain the juice, and ingest it in its entirety.ā In 1971, Tu was able to extract the active compound from the herb, artemisinin (also known as qinghaosu, éčæē“ , after the Chinese name for the herb). Tu and her colleagues later determined the chemical structure in 1979, and published their findings anonymously.
Artemisinin and its related derivatives are one of the most effective remedies for malaria. The structure of artemisinin includes an unusual peroxo bridge that is crucial to its antiparasitic activity. Upon ingestion, the ester carbonyl is hydrogenated to form dihydroartemisinin, which is the biologically active metabolite. The mechanism through which dihydroartemisinin kills parasites is unknown, but likely involves radical formation from the peroxo bridge, causing oxidative damage to the parasite.
References: (1)Ā https://en.wikipedia.org/wiki/Tu_Youyou (2)Ā http://www.nobelprize.org/nobel_prizes/medicine/laureates/2015/ (2) Miller, L. H; Su, X. Cell. 2011, 146 (6), 855-858. (3) Cumming, J. N.; Ploypradith, P.; Posner, G. H. Adv. Pharmacol.Ā 1996, 37, 253-297
When I passed my dissertation proposal defense today I was like:
This 16-year-old hacked a printer to come up with a cheaper way to detect heart disease
Adriel Sumathipala is a self-described tinkerer. The 16-year-old says the trait runs in the family: His grandfather, who died of a heart attack before Sumanthipala was born, also loved to build things too.
Once Sumanthipala learned that he and his family were also at risk for the disease that caused him to know his grandfather solely through āstories and grainy photos,ā he tried to stick to a regimen of exercise and healthy eating.
But he felt frustrated that he had no way to monitor the effectiveness of his lifestyle changes, because todayās cardiac diagnostic tests require expensive lab testing to measure cholesterol levels.
So, the teen set about creating an on-site, super low-cost, rapid heart disease test that ultimately won him a spot as one of Googleās 20 Global Science Fair finalists.
Instead of measuring cholesterol, his test would measure oxidized low-density lipoproteins (Ox-LDL), a biomarker that has an even stronger correlation with cardiac disease.
āI envisioned a diagnostic that would place vital health data in the hands of doctors and patients and thus establish the framework for a personalised medicine revolution,ā he writes.
With the help of his biology teacher, Sumathipala spent two years trying to build such a diagnostic system.
Ultimately, he was able to hack an inkjet printer to deposit enzymes onto two Ox-LDL sensors that he developed. The paper sensor could then indicate whether the enzymes have high or low concentrations of the cardiac disease biomarker Ox-LDL.
(Learn more about the project here.)
Read more
I totally agree we need cheaper, more accessible and more personalized healthcare. Part of that is making low cost tests that can be done anywhere and which have more accurate correlations with incidence of disease.
the phrase ācuriosity killed the catā is actually not the full phrase it actually is ācuriosity killed the cat but satisfaction brought it backā so donāt let anyone tell you not to be a curious little baby okay go and be interested in the world uwu
See also:
Blood is thicker than waterĀ The blood of the covenant is thicker than the water of the womb.
Meaning that relationships formed by choice are stronger than those formed by birth.
Letās not forget that āJack of all trades, master of noneā ends with āBut better than a master of one.ā
It means that being equally good/average at everything is much better than being perfect at one thing and sucking at everything else. So donāt worry if youāre not perfect at something you do! Being okay is better!
These made me feel better
Also, āgreat minds think alikeā ends with ābut fools rarely differā
It goes to show that conformity isnāt always a good thing. And that just because more than one person has the same idea, doesnāt necessarily mean itās a good idea.
what the fuck why havenāt i heard the full version to any of theseĀ
OH NO IāVE BEEN LIVING LIFE WRONG
IKR? It feels like Iāve been living a lie. :(
My life has been a lie nooo
Stabbing His Own Heart
Werner Theodor Otto Forssmann, a German surgical trainee in 1929, is famous for an experiment he performed on himself. Without any direction, he put himself under local anesthetic, incised a hole in his arm and pushed a catheter all the way up his limb and shoved it into his heart. He performed the procedure on himself with two feet of cable after which he walked to the X-ray room. He was fired after this stunt, but was awarded the 1956 Nobel Prize for Medicine for developing a procedure that allowed for cardiac catheterization. (Source)
BugsFeed: 4 bacteria that forgot how to bacteria
1. Mycoplasma - They are devoid of cell walls.
Yup. They lack cell wall precursors like muramic acid. No fixed shape or size. You could easily mistake mycoplasma for a virus, they even pass through bacterial filters! 2. Actinomycetes - They look like fungi!
I mean, the only reason we consider it as a bacteria is because it contains muramic acid in itās cell wall. Otherwise, those branching filaments scream the word, fungi! 3. Chlamydiae - Obligate intracellular parasite. Are you a virus?Ā
They fail to grow in cell free media, they get filtered in bacterial filters. Why are you called a bacteria, anyway? Well, they do have DNA, RNA, ribosomes and replicate by binary fission.. So letās count the poor energy parasite as a bacteria. 4. Mycobacteria - Hereās another rod shaped bacteria that sometimes shows filamentous forms resembling fungal mycelium.
So letās call it āmycobacteriaā, you know, fungus like bacteria! Unlike you regular gram positive and gram negative bacteria, they are acid fast. Related posts: Cell wall of gram positive and gram negative bacteria mnemonic Mycobacterial biochemical reactions mnemonic
What being a grad student feels like
Brain plasticity in the most dreaded biblical disease
Brain plasticity is the ability of the brain to change both anatomically and functionally in response to changes in the body or in the environment.
For many years, researchers believed that the brain did not suffer major changes after childhood. Although brain plasticity predominates in the first years of life, research done in the last 30 years has shown that it may also occur in adulthood, continuing to change through learning. Brain plasticity may also occur following injury, amputation or nerve damage.
Leprosy, also known as Hansenās disease, can be traced back to early human history. Descriptions of an ailment resembling leprosy as we know it today were found on an Egyptian Papyrus dating back to 1550 B.C. Also, the word tzaraath, which some believe specifically refers to leprosy, can be found in the Old Testament, where it is considered the most dreaded of all diseases.
Leprosy is a chronic infection caused by the bacteria Mycobacterium leprae and Mycobacterium lepromatosis. The bacillus predominantly infects nervous tissues, leading to nervous inflammation that most often affects the eyes, hands and feet. Contamination between individuals may occur through a cough or contact involving fluids. Although currently not very contagious, in the past, patients with leprosy were condemned to live life in isolation in order to save others from the perils of the disease. Leprosy is curable with multidrug therapy but the physical disabilities and deformities remain even after bacteriological cure.
Nerve damage caused by leprosy leads to limb disabilities and deformities such as a claw hand, neuropathic pain and a burning sensation. Patients with leprosy require long-term rehabilitation in order to control the chronic consequences of neural damage. Until now, leprosy was thought to affect the peripheral nerves connecting body parts to the brain without affecting the brain itself. However, a new study done by a multidisciplinary research team at the Federal University of Rio de Janeiro, Brazil, shows that peripheral nerve damage caused by leprosy can indeed change the brain.
The brainās motor cortex is the region responsible for generating neural impulses that reach the spinal cord and control the execution of movements. The group led by Dr. Claudia Domingues Vargas used transcranial magnetic stimulation (TMS), a noninvasive method, to measure the connection between the brain and the handgrip muscles in six adult patients with leprosy presenting the claw hand deformity. As expected, handgrip was generally weaker in the patientsā more affected hands relative to the less affected hands and to those of healthy individuals. Also, two out of the four tested hand muscles had a relatively smaller representation in the brain if compared to other muscles in the same patient or in healthy individuals. Interestingly, the ulnar nerve, which makes the connection between the brain and the two muscles with smaller representation, was more affected by the disease than other nerves in the same patient. On the other hand, a muscle connected to the brain by a nerve less affected showed stronger neuroelectrical signal, indicating a more robust evoked response. This finding demonstrates that the brain representation for a given muscle may change depending on the degree of damage in the nerve connecting the muscle to the brain, which is evidence for brain plasticity.
āOur findings indicate that the cortical motor area corresponding to the most affected hand suffers changes, revealing that that the damage caused by leprosy is not limited to peripheral nerve injuryā, says Dr. Vargas.
A better understanding of the relationship between limb dysfunction caused by leprosy and brain plasticity may help develop new treatment strategies for the millions of individuals currently suffering from this ancient disease.
Both were filled at the same time with the same water, only one had oysters.
Oysters really help filter our open waters. Sadly, their mortality rate is going up bc of ocean acidification which makes it harder for them to form their shells (see more about it here). Which means fewer oysters for eating and grosser waters in general. Again, this is already happening.
But letās keep acting like climate change isnāt a thing. -sigh-
Imagine the possibilities.
More prehensile boobage.
[Source: @AstroKatie on Twitter]