“Things get better -hurt less - over time. If you let them”

if i look back, i am lost

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cherry valley forever

#extradirty

Origami Around
ojovivo
Lint Roller? I Barely Know Her
d e v o n
taylor price
One Nice Bug Per Day
art blog(derogatory)
tumblr dot com
KIROKAZE

❣ Chile in a Photography ❣
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Monterey Bay Aquarium
★
Aqua Utopia|海の底で記憶を紡ぐ
occasionally subtle
seen from Singapore
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@lowdecembersun
“Things get better -hurt less - over time. If you let them”

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Teach your fucking sons that women don’t owe them a fucking thing
NASA Astronomy Picture of the Day 2016 October 23
Eagle Aurora over Norway
What’s that in the sky? An aurora. A large coronal mass ejection occurred on our Sun five days before this 2012 image was taken, throwing a cloud of fast moving electrons, protons, and ions toward the Earth. Although most of this cloud passed above the Earth, some of it impacted our Earth’s magnetosphere and resulted in spectacular auroras being seen at high northern latitudes. Featured here is a particularly photogenic auroral corona captured above Grotfjord, Norway. To some, this shimmering green glow of recombining atmospheric oxygen might appear as a large eagle, but feel free to share what it looks like to you. Although now past Solar Maximum, our Sun continues to show occasional activity creating impressive auroras on Earth visible only last week.
Sleepy.

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How to Build a Transgender-Friendly Workplace
There are a few simple things all companies can do to counter discrimination and help ensure that their workplace is an inclusive, welcoming place.
Read more.
Everyone should read.
Siouxsie Sioux in Face To Face
Lovely.
before you wake up
by matialonsor
Lovely stars.
joan jett of the runaways, stiv bators of the dead boys, and bebe buell posing for donna santisi, 1977
Lovelies.
Ramones backstage at the Whisky photographed by Jenny Lens, 1977
Punk Rock Chilling.

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There’s a cutie!
Sonic Youth - Titanium Exposè (1991)
Adorable!
Science/Visions @ Hollywood Forever
Flashy pretty.
*SMILES*
Researchers Shed Light on How Neurons Exchange Neurotransmitters
For more than a century, neuroscientists have known that nerve cells talk to one another across the small gaps between them, a process known as synaptic transmission (synapses are the connections between neurons). Information is carried from one cell to the other by neurotransmitters such as glutamate, dopamine, and serotonin, which activate receptors on the receiving neuron to convey excitatory or inhibitory messages.
But beyond this basic outline, the details of how this crucial aspect of brain function occurs have remained elusive. Now, new research by scientists at the University of Maryland School of Medicine (UM SOM) has for the first time elucidated details about the architecture of this process. The paper was published in the journal Nature.
Synapses are very complicated molecular machines. They are also tiny: only a few millionths of an inch across. They have to be incredibly small, since we need a lot of them; the brain has around 100 trillion of them, and each is individually and precisely tuned to convey stronger or weaker signals between cells.
To visualize features on this sub-microscopic scale, the researchers turned to an innovative technology known as single-molecule imaging, which can locate and track the movement of individual protein molecules within the confines of a single synapse, even in living cells. Using this approach, the scientists identified an unexpected and precise pattern in the process of neurotransmission. The researchers looked at cultured rat synapses, which in terms of overall structure are very similar to human synapses.
(Image caption: Synapses visualized in live neurons. The overall structure of one cell in a dense network of interconnected neurons is visible from expression of a red and green fluorescent protein that fills that cell entirely)
“We are seeing things that have never been seen before. This is a totally new area of investigation,” said Thomas Blanpied, PhD, Associate Professor in the Department of Physiology, and leader of the group that performed the work. “For many years, we’ve had a list of the many types of molecules that are found at synapses, but that didn’t get us very far in understanding how these molecules fit together, or how the process really works structurally. Now by using single-molecule imaging to map where many of the key proteins are, we have finally been able to reveal the core architectural structure of the synapse.”
In the paper, Blanpied describes an unexpected aspect to this architecture that may explain why synapses are so efficient, but also susceptible to disruption during disease: at each synapse, key proteins are organized very precisely across the gap between cells. “The neurons do a better job than we ever imagined of positioning the release of neurotransmitter molecules near their receptors,” Blanpied says. “The proteins in the two different neurons are aligned with incredible precision, almost forming a column stretching between the two cells.” This proximity optimizes the power of the transmission, and also suggests new ways that this transmission can be modified.
Blanpied’s lab has created a video representation of the process.
Understanding this architecture will help clarify how communication within the brain works, or, in the case of psychiatric or neurological disease, how it fails to work. Blanpied is also focusing on the activity of “adhesion molecules,” which stretch from one cell to the other and may be important pieces of the “nano-column.” He suspects that if adhesion molecules are not placed correctly at the synapse, synapse architecture will be disrupted, and neurotransmitters won’t be able to do their jobs. Blanpied hypothesizes that in at least some disorders, the issue may be that even though the brain has the right amount of neurotransmitter, the synapses don’t transmit these molecules efficiently.
Blanpied says that this improved comprehension of synaptic architecture could lead to a better understanding of brain diseases such as depression, schizophrenia and Alzheimer’s disease, and perhaps suggest new ideas for treatments.
Blanpied and his colleagues will next explore whether the synaptic architecture changes in certain disorders: they will begin by looking at a synapses in a mouse model of the pathology in schizophrenia.
“The complexity of the human brain seems overwhelming. But Dr. Blanpied and his colleagues have taken an important step in helping us understand this system,” said UM SOM Dean E. Albert Reece MD, PhD, MBA, who is also vice president for medical affairs at the University of Maryland and the John Z. and Akiko K. Bowers Distinguished Professor. “This study is impressive scientifically, and it is just the first step of what I am sure will be a long series of important discoveries about the brain and its disorders.”
Neat brain science and stuff.

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We’re celebrating Poe all October long, with special discussion events, films, even Poe for Kids events! Check our website for details http://ift.tt/2dt6qVs
*GIGGLES*
greta garbo
Dead crush.