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Our Body 🫆

Our Body 🫆

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How does our body work? Anatomy, physiology, and everyday habits from a scientific perspective. No magic, just facts.

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未指定国家医学2 627

📈 Telegram 频道 Our Body 🫆 的分析概览

频道 Our Body 🫆 (@our_body_us) 英语 语言赛道中的 是活跃参与者。目前社区聚集了 10 388 名订阅者,在 医学 类别中位列第 2 627

📊 受众指标与增长动态

невідомо 创建以来,项目保持高速增长,吸引了 10 388 名订阅者。

根据 14 九月, 2026 的最新数据,频道保持稳定运转。过去 30 天订阅人数变化为 5 332,过去 24 小时变化为 109,整体触达仍然可观。

  • 认证状态: 未认证
  • 互动率 (ER): 平均受众互动率为 75.24%。内容发布后 24 小时内通常能获得 21.59% 的反应,占订阅者总量。
  • 帖子覆盖: 每篇帖子平均可获得 7 816 次浏览,首日通常累积 2 243 次浏览。
  • 互动与反馈: 受众积极参与,单帖平均反应数为 93
  • 主题关注点: 内容集中在 cell, onion, crystal, element, demodex 等核心主题上。

📝 描述与内容策略

作者将该频道定位为表达主观观点的平台:
How does our body work? Anatomy, physiology, and everyday habits from a scientific perspective. No magic, just facts.

凭借高频更新(最新数据采集于 15 九月, 2026),频道始终保持新鲜度与高覆盖。分析显示受众积极互动,使其成为 医学 类别中的关键影响点。

10 388
订阅者
+10924 小时
+8407 天
+5 33230 天
帖子存档
Cell stages and chromosome arrangement under microscope. Subscribe ➡️ Under the Microscope 🔬

“Human breastmilk is more than just nutrition — it’s a living, dynamic substance. Under the microscope, you’ll see fat globules suspended like tiny galaxies, immune cells moving with purpose, and complex proteins forming intricate patterns. It adapts to a baby’s needs in real-time, delivering antibodies, enzymes, and even stem cells. What looks simple on the outside is biologically brilliant up close.” “These clips reveals the hidden complexity of breastmilk — one of the most advanced substances the human body produces.” Subscribe ➡️ Under the Microscope 🔬

🔬✨ The World Beneath the Lens: Neil Dust Under a Microscope! Subscribe ➡️ Under the Microscope 🔬

52 hours of imaging! I'm so happy with the result. I put off doing this for a while because I was so busy. But this time I wanted to test the new microscope so thought might as well give it a go. And even though we have worked with embryos for a long time, seeing it with your own eyes how well coordinated every cell is, how they synchronise their division and then their movement, exactly the same even between embryos is still breathtaking! This is the reason why we say biological systems are robust! How signalling molecules are organised and patterned is not well understood at all. It's also bit tricky when the embryos are 3D objects, so you can see that cells at different depth layers will be at different focuses, especially when the embryos move around too. So I had to do a z-stack and then used a small trick to stitch the different layers together hence why you may notice there's certain changes in the focus during the video. Subscribe ➡️ Under the Microscope 🔬

Brain eating amoeba Subscribe ➡️ Under the Microscope 🔬

🧅✨ What’s hiding on your onion skin? Let’s zoom in! 🔬 Thoroughly wash your veggies and you are safe! Onion peels are not just kitchen waste—they hide a fascinating microscopic world. When an onion peel is left exposed, black-colored fungal growth can often be seen. Under the microscope, this appears as fine black dust, which are actually spores. These spores help the fungus spread and survive in different conditions. Such fungi usually belong to the group Ascomycetes or Zygomycetes and thrive on the moist surface of onion peels. Apart from fungi, onion peels also reveal beautiful calcium oxalate crystals when viewed microscopically. These crystals are known as raphides. Plants produce them as a defense mechanism against herbivores—if eaten in large amounts, they can cause irritation in the mouth. So, a simple onion peel becomes a stage where both microbial colonizers (fungus) and plant defenses (calcium oxalate crystals) can be seen side by side—showing how life forms interact at the microscopic level. Subscribe ➡️ Under the Microscope 🔬

Here's some chemistry Fireworks ✨ Subscribe ➡️ Under the Microscope 🔬

These two are just single-celled organisms; basically a bunch of building blocks and cell machinery wrapped in a membrane, and here you can see what happens when that membrane bursts and spills its contents out. The smaller organism, Holophrya, has harpoon-like structures around its cell mouth that are expelled to immobilize prey. They usually go after smaller microorganisms or decomposing organic matter, so this whole scene was so unexpected my jaw was on the floor. When I found these two, Holophrya’s little harpoons had already fired and pierced the cell membrane of the larger organism, a Stentor, and it was tugging on the Stentor’s membrane. After a few seconds, the membrane popped almost like a balloon, and the Stentor’s cell contents spilled into the environment for Holophrya to feed on. Holophrya has sensory mechanisms that let it detect the chemical signals coming from the spilled contents of the Stentor. So it kept swimming around for minutes, swallowing all the soup-like cytoplasm droplets and solid chunks of organelles, and even the bits of lunch Stentor had earlier. While Holophrya was feeding on its spilled “guts,” the Stentor was busy repairing the hole in its membrane. Although it lost a lot of cell mass, Stentor has the ability to recover from all this and regenerate its deformed cell back to normal like nothing has happened. I wish I had that skill of regenerating emotionally, I’m like a savant of sad memories and broken cell membranes. 😂 Thank you for reading! Subscribe ➡️ Under the Microscope 🔬

Body's Hidden Soldiers Subscribe ➡️ Under the Microscope 🔬

🌿 Ganga Moss Under a Microscope This tiny piece of moss from the river Ganga is not just a plant… it’s a living city. Under the microscope, it bursts into life — algae weaving like green threads and fast-moving ciliates hunting between the leaves gliding amoeba, numerous fast moving bacteria, beautiful snails What looks still to our eyes is actually a thriving ecosystem, packed with organisms fighting, feeding, and flowing in a world too small to see. Every drop is a universe. Every organism has a story. And this moss… carries thousands. Welcome to the micro-world of the Ganga. A river of legends — and a galaxy of hidden life. Subscribe ➡️ Under the Microscope 🔬

They are Living on Your face Demodex are microscopic mites that naturally live on human skin. They are among the most common ectoparasites in humans, often unnoticed because of their tiny size and usually harmless nature. Where They Are Found Demodex mites live inside hair follicles and sebaceous (oil) glands. They are most abundant in areas rich in sebaceous glands, such as Face (nose, cheeks, forehead, chin) Eyelashes and eyebrows Ears Scalp Almost every adult human carries them, especially after puberty when oil gland activity increases. Types of Demodex in Humans 1. Demodex folliculorum Found in hair follicles 2. Demodex brevis Lives in sebaceous and meibomian glands. Anatomy & Structure Size: 0.2–0.4 mm long, invisible to the naked eye. Body is elongated, worm-like, divided into two main parts: 1. Gnathosoma (head region) – with tiny mouthparts for eating skin cells and oils. 2. Idiosoma (body region) – contains digestive system and reproductive organs. Eight short legs near the head used for crawling slowly. Transparent body, making them hard to detect without a microscope. Special Features No anus: They cannot excrete waste. Their body accumulates metabolic waste until they die, releasing it inside the follicle. Nocturnal movement: They come out at night to mate and move between follicles. Lifecycle: About 2–3 weeks. Eggs → larvae → nymph → adult. They move very slowly, about 8–16 mm per hour. Do They Cause Diseases? Normally, Demodex are harmless commensals. However, overpopulation can lead to or be associated with skin and eye problems: Demodicosis: Inflammation caused by too many mites. Blepharitis: Eyelid inflammation, especially from Demodex folliculorum. Rosacea-like skin issues: Some studies suggest Demodex density is higher in patients with rosacea. Subscribe ➡️ Under the Microscope 🔬

Found some water bears in running creek water! Love these little guys! Subscribe ➡️ Under the Microscope 🔬

Raw salmon magnified 400 times… I will never buy a microscope again! 🐟🤯🧐 Subscribe ➡️ Under the Microscope 🔬

This is not CGI - This is real microscope footage of the surface of a BUBBLE! It looks absolutely incredible! I hope you enjoy the footage :) Subscribe ➡️ Under the Microscope 🔬

🧈✨ Ghee Under the Microscope – A Hidden Crystal World! Ever wondered why ghee becomes grainy or granular in cold weather? When ghee cools down, the saturated fats in it — mainly palmitic acid and stearic acid — start to solidify and crystallize. These fat molecules organize into needle-like or plate-like crystals, which give ghee its familiar grainy texture in winter. Under the microscope, these crystals appear as beautiful, intricate structures, sometimes even showing birefringence (rainbow-like shine under polarized light). This process is completely natural and a sign of pure, traditional ghee — not a defect! 💡 The shape and size of the crystals depend on: The cooling rate The composition of fat The storage temperature What you're seeing is fat science at work — and it’s absolutely spectacular! 🔬💛 — 🧠 Did you know? Granular ghee is often considered more flavorful and pure in Indian kitchens! Subscribe ➡️ Under the Microscope 🔬

🙀 Subscribe ➡️ Under the Microscope 🔬

What happens when you add different crystals to mercury? Watch. Subscribe ➡️ Under the Microscope 🔬

Scientists just figured out how to reverse aging using AI. And this is a massive breakthrough. We can now reprogram any human cell back to age 20. Heart cells, brain cells, skin cells, all reset to their biological prime. And here’s the wildest part…the technology to do this, has already existed since 2012 (it won the Nobel Prize). But the real breakthrough wasn’t possible until this year, when they supercharged it with AI. It’s a wild story. So in 2006, scientists discovered Yamanaka factors. They’re proteins that can basically convert any normal cell into a universal stem cell. Now this was a huge deal, because these stem cells are basically like magic healers. If you have torn muscle tissue, you could inject these stem cells into the area and they will turn into the youthful muscle cells you need. So Yamanaka factors were this insane breakthrough, because they allowed any human to turn any cell you already have into these magic healers. But, there was one big problem… It turns out, the original Yamanaka factors weren’t very good at this stem cell conversion. They could do it, but they just weren’t very reliable. Enter OpenAI...and this is where things get crazy. OpenAI designed a special AI model built specifically to create new proteins. Think of it like ChatGPT but for protein engineering. So they took all the Yamanaka research and asked this new AI to go ham on improving it. And get this… Their version was 50x more effective than the original. They tested it on 50 year old cells and it successfully started repairing 30% of their cells in just 7 days. This is just science fiction…it actually happened. And it sounds crazy, but in a few years, humans will be able to take a shot that will literally reverse the age of their cells. Subscribe ➡️ Under the Microscope 🔬

Cats, nature’s apex predators Subscribe ➡️ Under the Microscope 🔬

Wild-caught fish carry up to 90% parasite rates, and farmed ones aren’t much better. The main culprit is Anisakis, a worm that can burrow into your gut wall and trigger: → Random allergies → Bloating that won’t budge → Autoimmune-like flares that don’t make sense to even the best doctors Please just cook your food. Times have evolved. We now have fire 😉 Subscribe ➡️ Under the Microscope 🔬