Changing stroke rehab and research worldwide now.Time is Brain! trillions and trillions of neurons that DIE each day because there are NO effective hyperacute therapies besides tPA(only 12% effective). I have 523 posts on hyperacute therapy, enough for researchers to spend decades proving them out. These are my personal ideas and blog on stroke rehabilitation and stroke research. Do not attempt any of these without checking with your medical provider. Unless you join me in agitating, when you need these therapies they won't be there.

What this blog is for:

My blog is not to help survivors recover, it is to have the 10 million yearly stroke survivors light fires underneath their doctors, stroke hospitals and stroke researchers to get stroke solved. 100% recovery. The stroke medical world is completely failing at that goal, they don't even have it as a goal. Shortly after getting out of the hospital and getting NO information on the process or protocols of stroke rehabilitation and recovery I started searching on the internet and found that no other survivor received useful information. This is an attempt to cover all stroke rehabilitation information that should be readily available to survivors so they can talk with informed knowledge to their medical staff. It lays out what needs to be done to get stroke survivors closer to 100% recovery. It's quite disgusting that this information is not available from every stroke association and doctors group.

Showing posts with label dentate gyrus. Show all posts
Showing posts with label dentate gyrus. Show all posts

Thursday, October 5, 2023

Loss of brain interneurons linked to cognitive deficits in aging

Is your doctor checking on this before automatically blaming the stroke for your cognitive deficits?

Loss of brain interneurons linked to cognitive deficits in aging

Normal aging is usually associated with a decline in memory, although it is unclear what factors play a role. In a new study, researchers studied specific interneurons, which serve as communication centers that connect other neurons, in the regions of the brain that are important for learning and memory.

Increasing age places people at risk, whether it is because of a normal decrease in cognitive ability or due to postoperative cognitive disorders. In the latter, the deficits can persist for many months after surgery especially when the patients are older than 60. Unfortunately, the underlying cellular mechanisms that cause these impairments are largely unknown.

Previous studies have shown that the region of the brain that is associated with learning and memory-;the hippocampus-; decreases in volume with age. Additionally, the levels of the molecule -aminobutyric acid, or GABA, and some of the interneurons that release it are also affected.

In the present study, the researchers focused on the hippocampal interneurons in a specific region, called the hilus of the dentate gyrus, that are characterized by their expression of somatostatin. This hormone has the ability to counteract the effects of growth hormones elsewhere in the body.

In the past, other researchers have found that one of the differences between cognitively impaired and unimpaired rats was that the former had a lower number of somatostatin-positive interneurons in the hilus of the dentate gyrus. We wanted to further investigate whether a loss of these neurons is really responsible for cognitive deficits, and whether it could thus serve as a model of aging in the hippocampus."

Uwe Rudolph (GNDP), professor of comparative biosciences

The researchers decreased the numbers of somatostatin-positive interneurons in the hippocampus of mice by using a toxin. They injected this toxin into the dentate hilus, so that the toxin would only be expressed in the somatostatin-positive interneurons, killing approximately 50% of these cells. Starting 3 weeks later, they conducted behavioral studies to test the learning abilities and memory of the mice.

The mice underwent three types of tests: whether they could remember and differentiate novel objects from familiar ones, navigate mazes using their short-term memories, and use their spatial learning to find a hidden platform in a pool of water. In all three cases, the mice that had decreased levels of somatostatin-positive interneurons struggled compared to those that did not receive the toxin.

The researchers also looked for changes in cellular signals that occur due to lower levels of somatostatin-positive interneurons. To do so, they focused on the microglia, which are immune cells that are among the first to respond when something goes wrong in the brain.

"We looked at microglial activation, which is a hallmark of the inflammation that is associated with aging and memory impairment," said Rajasekar Nagarajan, a postdoctoral researcher in the Rudolph lab. "We saw increased activation of microglia in the hippocampus of the mice that were injected with the toxin, even outside of the dentate gyrus."

In addition to determining the status of microglia, the team measured a protein called brain-derived neurotrophic factor, which is active in the hippocampus and plays a role in long-term memory. They found that there were lower BDNF levels in the hippocampal tissue of the toxin-injected mice. Furthermore, the researchers also found that these mice had fewer hippocampal dendritic spines, which are critical for learning and memory.

Unsurprisingly for the researchers, the results seen with the toxin-injected mice were essentially the same as with aged mice that were 18-19 months old and had not been injected with the toxin.

"18-month-old mice correspond to an age of approximately 60 years in humans. It roughly fits the time point at which we know that people more frequently develop neurocognitive deficits in response to surgery and anesthesia," Rudolph said. "Our results have shown that using this toxin to reduce the number of somatostatin-positive interneurons is sufficient to cause effects that resemble cognitive deficits in aging."

The researchers are excited that they can use these techniques to investigate aging-related defects without waiting for the mice to grow old, which is an expensive and time-consuming undertaking. "We will be using this method as a model to test which experimental compounds can be used to prevent or reverse both age-related and post-operative cognitive impairments," Nagarajan said.

Source:
Journal reference:

Nagarajan, R., et al. (2023) Genetic Ablation of Dentate Hilar Somatostatin-Positive GABAergic Interneurons is Sufficient to Induce Cognitive Impairment. Molecular Neurobiology. doi.org/10.1007/s12035-023-03586-3.

Sunday, February 5, 2017

Brain plasticity: How adult-born neurons get wired-in

Title is wrong, this is neurogenesis not neuroplasticity.

Someone in the stroke world needs to write this up as a stroke protocol understandable to laypersons.

Brain plasticity: How adult-born neurons get wired-in

One goal in neurobiology is to understand how the flow of electrical signals through brain circuits gives rise to perception, action, thought, learning and memories.
Linda Overstreet-Wadiche, Ph.D., and Jacques Wadiche, Ph.D., both associate professors in the University of Alabama at Birmingham Department of Neurobiology, have published their latest contribution in this effort, focused on a part of the that helps form memories—the of the hippocampus.
The dentate gyrus is one of just two areas in the brain where new neurons are continuously formed in adults. When a new granule cell neuron is made in the dentate gyrus, it needs to get 'wired in,' by forming synapses, or connections, in order to contribute to circuit function. Dentate are part of a circuit that receive from the entorhinal cortex, a cortical brain region that processes sensory and spatial input from other areas of the brain. By combining this sensory and spatial information, the dentate gyrus can generate a unique memory of an experience.
Overstreet-Wadiche and UAB colleagues posed a basic question: Since the number of neurons in the dentate gyrus increases by neurogenesis while the number of neurons in the cortex remains the same, does the brain create additional synapses from the cortical neurons to the new granule cells, or do some cortical neurons transfer their connections from mature granule cells to the new granule cells?
Their answer, garnered through a series of electrophysiology, dendritic spine density and immunohistochemistry experiments with mice that were genetically altered to produce either more new neurons or kill off , supports the second model—some of the transfer their connections from mature granule cells to the new granule cells.
This opens the door to look at how this redistribution of synapses between the old and new neurons helps the dentate gyrus function. And it opens up tantalizing questions. Does this redistribution disrupt existing memories? How does this redistribution relate to the beneficial effects of exercise, which is a natural way to increase neurogenesis?
"Over the last 10 years there has been evidence supporting a redistribution of synapses between old and new , possibly by a competitive process that the new cells tend to 'win,'" Overstreet-Wadiche said. "Our findings are important because they directly demonstrate that, in order for new cells to win connections, the old cells lose connections. So, the process of adult neurogenesis not only adds new cells to the network, it promotes plasticity of the existing network."
"It will be interesting to explore how neurogenesis-induced plasticity contributes to the function of this brain region," she continued. "Neurogenesis is typically associated with improved acquisition of new information, but some studies have also suggested that neurogenesis promotes 'forgetting' of existing memories."
The researchers also unexpectedly found that the Bax gene, known for its role in apoptosis, appears to also play a role in in the dentate gyrus.
"There is mounting evidence that the cellular machinery that controls cell death also controls the strength and number of synaptic connections," Overstreet-Wadiche said. "The appropriate balance of synapses strengthening and weakening, collectively termed synaptic plasticity, is critical for appropriate brain function. Hence, understanding how synaptic pruning occurs may shed light on neurodevelopmental disorders and on neurodegenerative diseases in which a synaptic pruning gone awry may contribute to pathological synapse loss."
More information: Elena W Adlaf et al, Adult-born neurons modify excitatory synaptic transmission to existing neurons, eLife (2017). DOI: 10.7554/eLife.19886
Provided by: University of Alabama at Birmingham

Thursday, October 9, 2014

Tooth loss inhibits neurogenesis in the dentate gyrus of adult mice

Just for grins, ask your doctor how badly your neurogenesis is affected by the teeth you've lost. What stroke protocol is your doctor using to get around that problem? Would that include removed wisdom teeth? 

Tooth loss inhibits neurogenesis in the dentate gyrus of adult mice




1 School of Life Sciences, Lanzhou University; Second Hospital, Lanzhou University, Lanzhou, Gansu Province, China
2 First Hospital, Lanzhou University, Lanzhou, Gansu Province, China
3 Changzhou Institute of Mechatronic and Technology, Changzhou, Jiangsu Province, China

Date of Acceptance 30-Jul-2014
Date of Web Publication 4-Oct-2014
Correspondence Address:
Jianlin Wang
School of Life Sciences, Lanzhou University; Second Hospital, Lanzhou University, Lanzhou 730030, Gansu Province
China
Lan Yang
School of Life Sciences, Lanzhou University; Second Hospital, Lanzhou University, Lanzhou 730030, Gansu Province
China
Login to access the Email id

DOI: 10.4103/1673-5374.141786
Get Permissions
  Abstract  
Tooth loss has been shown to affect learning and memory in mice and increases the risk of Alzheimer's disease. The dentate gyrus is strongly associated with cognitive function. This study hypothesized that tooth loss affects neurons in the dentate gyrus. Adult male mice were randomly assigned to either the tooth loss group or normal control group. In the tooth loss group, the left maxillary and mandibular molars were extracted. Normal control mice did not receive any intervention. Immunofluorescence staining revealed that the density and absorbance of doublecortin- and neuronal nuclear antigen-positive cells were lower in the tooth loss group than in the normal control group. These data suggest that tooth loss may inhibit neurogenesis in the dentate gyrus of adult mice.
Keywords: nerve regeneration; neurogenesis; neurons; tooth loss; hippocampus; dentate gyrus; doublecortin; neuronal nuclear antigen; neural regeneration

How to cite this article:
Su S, Qi T, Su B, Gu H, Wang J, Yang L. Tooth loss inhibits neurogenesis in the dentate gyrus of adult mice. Neural Regen Res 2014;9:1606-9