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The Humanicsxian: November 09: Issue 06
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The Elleesium: England: UK: Year Ninth: Day 55: Friday: November 17: 2023: Cogito Ergo Sum: Descartes

 

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|| Space Travel Depletes Red Blood Cells and Bone But Bone Marrow Fat May Come to the Rescue ||

 

 

|| Sunday: September 10: 2023 || ά. A Study of 14 astronauts suggests that while space travel depletes red blood cells and bone, the body can, eventually, replenish them back on Earth with the help of fat stored in the bone marrow. The Study, published in Nature Communications, has important implications for health in space and on Earth.

“We found that astronauts had significantly less fat in their bone marrow about a month after returning to Earth.” said the Senior Study Author Dr Guy Trudel, a Rehabilitation Physician and Researcher at the Ottawa Hospital and Professor in the Faculty of Medicine. “We think the body is using this fat to help replace red blood cells and rebuild bone, that has been lost during space travel.”

This Study builds on Dr Trudel’s previous research, which showed that during space travel, astronauts’ bodies destroyed 54% more red blood than they normally would on Earth, resulting in what is known as ‘space anaemia’. This research is part of Ottawa experiment, looking at bone marrow health and blood production in space, with funding from the Canadian Space Agency.

“Thankfully, anaemia isn’t a problem in space when your body is weightless but, when landing on Earth and, potentially, on other planets or moons with gravity, anaemia would affect energy, endurance and strength and could threaten mission objectives.” Said Dr Trudel of the Department of Biochemistry, Microbiology and Immunology. “If, we can find out exactly what’s controlling this anaemia, we might be able to improve prevention and treatment.

The new Study involved MRI scans of the astronauts’ bone marrow at multiple time-points before and after a six-month mission at the International Space Station. The researchers found a 04.2% decrease in bone marrow fat about a month after returning to Earth. This gradually returned to normal levels and was closely associated with increased production of red blood cells and restoration of bone.

“Since red blood cells are made in the bone marrow and bone cells surround the bone marrow, it makes sense that the body would use up the local bone marrow fat as a source of energy to fuel red blood cell and bone production.” Said Dr Trudel. “We look forward to investigating this further in various clinical conditions on Earth.”

The research, also, suggests that younger astronauts may have an increased ability to harness the energy from bone marrow fat and that female astronauts’ bone marrow fat increased more than expected after a year. Most of Dr Trudel’s patients are anaemic and have lost muscle and bone mass after being ill for a long time with limited mobility. Anaemia hinders their ability to exercise and recover muscle and bone mass.

“I’m hopeful that this research will help people recover from immobility on Earth, as well as, in space.” Said Dr Trudel. “Our research could, also, shed light on diseases, such as, osteoporosis, metabolic syndrome, aging and cancer, which are associated with increases in bone marrow fat.”

Dr Trudel recently received the 2023 Compelling Results Award for Human Health in Space for his research on space anqemia, jointly presented by NASA, the Centre for the Advancement of Science in Space and the American Astronautical Society. :::ω:::

|| Readmore thehumanion.com/Medicine.htm  || reginehumanicsfoundation.com ||  110923 ||

 

 

 

 

|| How Does Being in Space Impair Astronauts’ Immune System ||

 

 

|| Thursday: September 07: 2023 || ά. A new Study, led by researchers at the Karolinska Institutet, has examined how T-cells of the immune system are affected by weightlessness. The results of the Study has been published in the journal Science Advances, that could explain why astronauts’ T-cells become less active and less effective at fighting infection.

In the Study, the researchers have tried to simulate weightlessness in space, using a method of, what is called dry immersion. This involves a custom-made waterbed, that tricks the body into thinking it is in a weightless state. The researchers examined T-cells in the blood of eight healthy individuals for three weeks of exposure to simulated weightlessness. Blood analyses were performed before the experiment started, at 07, 14 and 21 days after the start and at 07 days after the experiment ended.

The next steps in the exploration of space are human missions to the Moon and to Mars. Space is an extremely hostile environment, posing many kinds of threats to human health. One such threat is the changes to the immune system, that occur in astronauts while in space and that persist after their return to Earth. This immune deficiency can leave them more vulnerable to infection and lead to the reactivation of latent viruses in the body.

“If, astronauts are to be able to undergo safe space missions, we need to understand how their immune systems are affected and try to find ways to counter harmful changes to it.” says the Study Leader Lisa Westerberg, the Principal Researcher at the Department of Microbiology, Tumour and Cell Biology, at the Karolinska Institutet. “We’ve now been able to investigate what happens to T-cells, which are a key component of the immune system, when exposed to weightless conditions.”

They found that the T-cells significantly changed their gene expression, that is to say, which genes were active and which were not, after 07 and 14 days of weightlessness and that the cells became more immature in their genetic programme. The greatest effect was seen after 14 days.

“The T-cells began to resemble more so-called naïve T-cells, which have not yet encountered any intruders. This could mean that they take longer to be activated and, thus, become less effective at fighting tumour cells and infections. Our results can pave the way for new treatments, that reverse these changes to the immune cells’ genetic programme.” says Carlos Gallardo Dodd, PhD student at the Department of Microbiology, Tumour and Cell Biology, the Karolinska Institutet and Christian Oertlin and Julien Record, other researchers at the same department.

After 21 days, the T-cells had adapted their gene expression to weightlessness so that it had almost returned to normal but, analyses carried out seven days after the experiment ended showed that the cells had regained some of the changes.

The researchers now plan to use Esrange Space Centre’s sounding rocket platform in Kiruna, Sweden, to study how T-cells behave in weightless conditions and how their function is affected.

Research: Exposure of volunteers to microgravity by dry immersion bed over 21 days results in gene expression changes and adaptation of T-cells: Carlos J. Gallardo-Dodd, Christian Oertlin, Julien Record, Rômulo G. Galvani, Christian Sommerauer, Nikolai V. Kuznetsov, Evangelos Doukoumopoulos, Liaqat Ali , Mariana M.S. Oliveira, Christina Seitz, Mathias Percipalle, Tijana Nikić, Anastasia A. Sadova, Sofia M. Shulgina, Vjacheslav A. Shmarov, Olga V. Kutko, Daria D. Vlasova, Kseniya D. Orlova, Marina P. Rykova, John Andersson, Piergiorgio Percipalle, Claudia Kutter, Sergey A. Ponomarev, Lisa S. Westerberg: Science Advances Online: August 25: 2023:::ω:::

|| Readmore thehumanion.com/Medicine.htm  || reginehumanicsfoundation.com ||  080923 ||

 

 

 

|| Muscle Stimulation to Enhance Astronaut Health ||

 

|| Wednesday: August 30: 2023 || ά. Space exploration presents unique health challenges for astronauts due to lack of gravity, isolation and radiation exposure. ESA's SciSpacE activities aim to comprehend these effects and their implications for human well-being during extended missions.

ESA collaborates with researchers to conduct experiments in microgravity and analogue environments, shedding light on the consequences of space stressors. One critical concern is muscle and bone atrophy. Despite daily exercise routines, astronauts face deterioration. ESA is investigating electrical stimulation as a potential countermeasure, with tests planned on board the International Space Station.

The ‘Muscle Stimulation’ experiment is a centrepiece of this research. By applying controlled electric currents to leg muscles, the study aims to enhance muscle mass, strength and recovery. Complementary assessments, including, MRI scans, microcirculation analysis and blood samples, will provide a comprehensive understanding of the efficacy.

Addressing these challenges could yield benefits on Earth, too. The insights gained could translate to better healthcare for diverse populations, from the elderly to clinical patients and athletes.

ESA's dedication to advancing space exploration while safeguarding astronauts' physical health underscores its commitment to a sustainable and thriving space programme. Through research and innovative solutions, humanity edges closer to conquering the challenges of extended spaceflight and improving life on our home planet. :::ω:::

|| Readmore thehumanion.com/Medicine.htm ||  reginehumanicsfoundation.com ||  310823 ||

 

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