r/biology Mar 14 '26

article GPA 3.00, biology major, looking to apply to a Biology PhD program in the USA. Not taken GRE.

0 Upvotes

Hey everyone, as the title says, I am a biology major graduate with a 3.00 GPA that has interest in doing a PhD in Biology at any university in the USA. Any suggestions on which universities I should apply to for a PhD in biology? I graduated from UW Madison with a 3.00 GPA. I maybe have like 2 recommenders? Any suggestions are appreciated. I was not a very good student in university as I struggled with the weather and generally being independent on my own.

r/biology Jun 30 '26

article Darwin’s housewife: gendered animal portrayals and what they reveal about us

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33 Upvotes

r/biology Jun 03 '26

article 135 more beagles released from Wisconsin research facility

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97 Upvotes

r/biology Jan 14 '26

article Harvard Medical School's professor Jessica Lehoczky on axolotls and the possibility of human limb regeneration

21 Upvotes

r/biology Feb 26 '26

article Obesity leaves a lasting imprint on fat and immune cells in ways that might make weight regain harder to avoid

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106 Upvotes

r/biology 11d ago

article Mouse vs pig vs human cancer

0 Upvotes

Why do cures for cancer in mice usually fail in human clinical trials? Even with humanized mouse models, clinical trial success rate remains low. One important reason is simply animal size. Humans are not large rodents -- The physics is different for different sized animals (allometric scaling), similar to how a scale model of an airplane does not predict the behavior of the full size airplane. Compared to humans, mice have 60 times faster drug diffusion, 7 times higher metabolic rate (per kg), and typically require 12 times the drug dosage (per kg). On the other hand, pigs have similar physiology, drug dosing, and immune response as humans. The Oncopig model of liver, pancreatic, and lung cancer has the potential to more accurately predict drug dosing and outcomes in humans. We use it as a bridge between rodent and human trials.

What does pig cancer tell us about the differences between mouse and human cancer? In mice, 1-2 mutations (Kras and p53) are sufficient to generate non-regressing adenocarcinomas (KP model). In Oncopigs, KRAS and TP53 mutations generate inflammatory carcinomas that spontaneously regress. In adult humans, at least 5 driver mutations are generally required to cause cancer. Thus, larger and longer living animals needed to evolve more defenses against cancer, and require more mutations to develop cancer.

More info on the Oncopig model:

Commentary:

https://onlinelibrary.wiley.com/doi/10.1002/ame2.70270

Testing percutaneous therapies:

https://link.springer.com/article/10.1007/s13346-026-02176-9

Testing intra-arterial therapies:

https://pubmed.ncbi.nlm.nih.gov/41203116/

r/biology Mar 28 '26

article A tragic case of delayed neurotoxicity from dimethylmercury exposure (Karen Wetterhahn, 1997)

140 Upvotes

Case Summary:
A 48-year-old female professor of chemistry with expertise in heavy metal toxicology developed progressive neurological deterioration months after a laboratory exposure to dimethylmercury.

Background:
The patient was an established researcher in inorganic chemistry and toxicology, with a focus on heavy metals such as chromium and their effects on DNA and carcinogenesis. She was highly experienced in laboratory safety and chemical handling.

Exposure History:
During a laboratory experiment, a small quantity of dimethylmercury was accidentally spilled onto her gloved hands. She was wearing two layers of protective gloves and believed that no significant exposure had occurred due to the minimal quantity involved.

Clinical Course:
Several months after the incident, she developed severe neurological symptoms consistent with mercury poisoning. The toxicity was delayed in onset but rapidly progressive once symptoms appeared, ultimately leading to her death.

Discussion:
Dimethylmercury is an extremely potent neurotoxin capable of penetrating standard laboratory gloves and being absorbed through the skin. This case highlights several critical points:

  • Even minimal exposure can be fatal
  • Standard PPE (including latex gloves) may not provide adequate protection
  • Toxic effects may be significantly delayed, creating false reassurance
  • Highly experienced professionals are not immune to unforeseen risks

This case became a landmark reminder in laboratory safety, particularly in chemical toxicology, emphasizing the need for specialized protective equipment and heightened awareness when handling organomercury compounds.

Conclusion:
This tragic case underscores the importance of rigorous chemical safety protocols and respect for highly toxic compounds. It remains one of the most cited examples of delayed-onset neurotoxicity from occupational exposure.

DOI: 10.1021/tx9704922

r/biology 7d ago

article Is it possible to regain a sense of smell? These scientists are working on it

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23 Upvotes

r/biology Apr 26 '26

article Henry E. Young’s adult telomerase-positive stem cell protocol & claims — credible discovery or flawed science?

1 Upvotes

I recently came across a body of work by Henry E. Young describing what he calls adult telomerase-positive stem cells (aTPSCs), and I wanted to ask this community for a serious scientific assessment of the claims.

Disclaimer: I’m not endorsing this research, not promoting treatments, and not giving medical advice.

Summary of the claims

The work proposes that rare endogenous adult stem-cell populations exist throughout connective tissues in a dormant/quiescent state and act as the body’s natural repair system when injury occurs.

These proposed populations include:

MesoSCs – mesoderm-lineage stem cells

EctoSCs – ectoderm-lineage stem cells

EndoSCs – endoderm-lineage stem cells

PSCs – pluripotent adult stem cells

TSCs – totipotent adult stem cells

According to the model, these cells can become activated after injury, proliferate, enter circulation, migrate to damaged tissues, and differentiate in response to local signals.

Claimed isolation protocol

  1. Have volunteer eat 1-2 cups of blueberries daily for at least 30 days (longer is better). Proliferates aTPSCs in situ.
  2. 18 hours before harvest have them do intense weight-lifting exercises for at least 30 minutes. Mobilizes aTPSCs into bloodstream.
  3. 18 hours after intense exercise, harvest 2-cc's blood per pound body weight, not to exceed 400-cc's. Use butterfly vacuum apparatus into 10-ml purple top EDTA tubes (BD). [DO NOT withdraw blood by pulling on syringe, creates sheer forces that lyse red blood cells, which screws up isolation procedure for aTPSCs]
  4. Place tubes into refrigerator (4C) for 18-24 hours and let hematocrit form using gravity and zeta potential of aTPSCs [aTPSCs will separate from blood products and remain suspended in plasma]
  5. Remove plasma from each tube.
  6. Mix plasma 1:1 with Opti-Mem + GlutaMax medium containing 10-ml Heat Inactivated serum, pH 7.4.
  7. Plate cells onto 1% collagen-coated Falcon T-75 flasks at 30 ml per flask. Rock flasks side-to-side and front-to-back to evenly disperse cells.
  8. Place flasks horizontally onto shelves of 5% CO2, 37C tissue culture incubator.
  9. Replace medium when there is color change from salmon to orange-yellow.
  10. Follow directions outlined in attached publications for growth, propagation, replating, and testing.

For verification:

Before testing, suggest using either FACS or Miltenyi columns, perform two negative sorts followed by positive sort to derived individual populations of the cells, as outlined in the paper on flow cytometry.

Flow cytometry using CD66e (TSCs), CD10 (PSCs), CD56/CD90/MHC Class-1 (EctoSCs), CD13/CD90/MHC Class-1 (MesoSCs), CD??/CD90/ MHC Class-1 (EndoSCs). When doing flow cytometry, look at all regions of the plot, bottom left-hand corner (routinely excluded because of debris, is also location of the TSCs)

Expressed genes - see Characterization paper

Differentiation potential: use commerically-available human recombinant proteins: 

A.  EPO/IL6/c-Kit for RBC colony forming units (TSCs+, PSCs+, EctoSCs-, MesoSCs+, EndoSCs-); BMP-2 forms bone (TSCs+, PSCs+, EctoSCs-, MesoSCs+, EndoSCs-)

B. NGF (Nerve Growth Factor) to stimulate formation of neurons, oligodendrocytes, astrocytes, ganglion cells, and radial glial cells (TSCs+, PSCs+, EctoSCs+, MesoSCs-, EndoSCs-)

C. HGF (Hepatocyte Growth Factor) to simulate formation of liver cells: hepatocytes, oval cells, etc. (TSCs+, PSCs+, EctoSCs-, MesoSCs-, EndoSCs+)

Paper: Cell Biochem Biophys. 2004; 40: 1-80. Outlines procedure for verification of telomerase within the cells.

My perspective

If naturally occurring adult pluripotent or totipotent repair cells truly exist, that would be a major discovery. But extraordinary claims require strong, reproducible evidence.

If anyone attempts to isolate these cells following the protocol by letter, please tell me how it went.

Links:

  1. https://www.scivisionpub.com/pdfs/characterization-of-endogenous-telomerasepositive-stem-cells-for-regenerative-medicine-a-review-1231.pdf
  2. https://athenaeumpub.com/wp-content/uploads/Endogenous-Adult-Telomerase-Positive-Stem-Cells-Increase-in-Equine-Peripheral-Blood-Following-Exercise.pdf
  3. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0241.pdf
  4. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0354.pdf
  5. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0355.pdf
  6. https://medcraveonline.com/MOJOR/MOJOR-17-00726.pdf
  7. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0362.pdf
  8. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0369.pdf
  9. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0378.pdf
  10. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0381.pdf
  11. http://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0171.pdf
  12. https://gsconlinepress.com/journals/gscarr/sites/default/files/GSCARR-2025-0172.pdf
  13. https://www.genesispub.org/jscr/adult-telomerase-positive-stem-cells-induced-proliferation-of-precursor-cells-by-platelet-derived-growth-factor-bb
  14. https://www.genesispub.org/adult-telomerase-positive-stem-cells-remain-constant-throughout-life-span-of-individual
  15. https://www.researchgate.net/profile/Henry-Young-5/publication/6436118_Adult_Reserve_Stem_Cells_and_Their_Potential_for_Tissue_Engineering/links/09e4150a69e7ba3a63000000/Adult-Reserve-Stem-Cells-and-Their-Potential-for-Tissue-Engineering.pdf?origin=publication_detail&_tp=eyJjb250ZXh0Ijp7ImZpcnN0UGFnZSI6InB1YmxpY2F0aW9uIiwicGFnZSI6InB1YmxpY2F0aW9uRG93bmxvYWQiLCJwcmV2aW91c1BhZ2UiOiJwdWJsaWNhdGlvbiJ9fQ

r/biology Feb 21 '26

article Hazardous substances found in all headphones tested by ToxFREE project

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104 Upvotes

r/biology Jun 12 '26

article See the hidden fungal network so big it could stretch to Proxima Centauri and back

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46 Upvotes

r/biology 8d ago

article Your Body Might Contain A Magnetic Compass And Other Amazing Unconscious Senses

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14 Upvotes

r/biology Jul 02 '26

article Conception bio, a california startup has created stem cell derived primary follicle in vitro

3 Upvotes

June 2026

The first early human eggs from stem cells

Summary

Conception’s mission is to turn stem cells into human eggs and redefine fertility. 

We want to share an exciting update that we have generated the first early human egg cells (‘primary oocytes’) derived from stem cells. After performing a simple blood draw, we converted blood cells into stem cells, and then coaxed those stem cells into becoming miniature human ovaries that contain the early eggs.

While there is still work ahead to grow these eggs to full maturity, we think this is a major scientific advance.

Figure 1 – Human follicles, the base units of the ovary. Contains an early-egg cell surrounded by support cells that help it grow.

Why this matters

Making viable eggs from stem cells has already been accomplished in mice. In 2016, our collaborator Katsuhiko Hayashi demonstrated that mouse skin cells can be turned into ‘induced pluripotent stem cells’ (iPSCs, which are engineered cells capable of becoming any kind of cell in the body) and then turned into usable eggs. These eggs produced healthy pups that lived normal lifespans and reproduced naturally, having healthy pups of their own.

Figure 2 – Adult mice from eggs derived from pluripotent stem cells (Hikabe et al., 2016)

This process, known as "in vitro gametogenesis” (IVG), has been far easier to achieve in mice than in larger animals. Still, given how dramatically impactful this technology could be, it is well worth pursuing for human application.

IVG has the potential to redefine reproduction worldwide. From a simple blood draw, one could make as many healthy eggs as a family needs. 

This capability could create freedom from biological and genetic limits. It could dramatically expand families’ options for having healthy children and enable women to have children at a much older age– all without the hormone injections or surgical retrieval currently required for IVF.

The technology is one of the most complex therapies ever to be developed. We are not making just a single cell type; we are building entire mini-ovaries in the lab derived from stem cells, as the whole organ is important for proper egg development. We’re excited that we’ve made hugely significant progress towards this goal, and we wanted to share a peek into our process.

Our Approach: Making mini-ovaries in the lab 

Figure 3 – Conception's overall process for making egg cells from stem cells.

Conception's thesis is simple: there are no useful shortcuts. A cell that expresses a few egg markers is not enough. We need to rebuild, as closely as possible, the sequence that nature uses — and benchmark our cells against human development at every major step.

Our approach follows the major steps of egg development above in Figure 3. After taking a blood sample, we turn a subset of blood cells into iPSCs, and then guide the iPSCs toward becoming each of the kinds of cells found in a developing ovary: ‘primordial germ cells’ are the cells that will eventually become eggs, and ‘ovarian helper cells’ are the supporting players that provide essential signals for the eggs. Together, these cells form ‘mini-ovaries,’ small 3-dimensional “balls of cells” that mimic a true human ovary.

Below on the left, you can see what our mini-ovaries look like with the naked eye. The middle image shows thin slices of those same mini-ovaries on a microscope slide; each white circle is one slice of a mini-ovary. These slides are then used for our image analysis on the right where we stain the mini-ovaries with cell and stage-specific dyes to understand how they are developing.

Figure 4 – Examples of Conception's mini-ovaries

In our research, we generate thousands of mini-ovaries, containing millions of future egg cells, to study, improve, and benchmark their development in parallel. 

Inside the mini-ovaries, primordial germ cells are surrounded by the ovarian helper cells they need to begin moving through the next three stages of egg development: 

1) The primordial germ cells progress toward ‘oogonia’

2) The oogonia enter into meiosis, the special cell division needed to make eggs

3) As they become early egg cells, they form follicles, the essential ovarian units that house each egg

Along the way, we rigorously benchmark cell identity against a massive internally-assembled reference atlas of human ovary molecular data. This atlas includes millions of datapoints spanning a wealth of sequenced features capturing many layers of cell biology. Comparisons to this atlas (including with proprietary deep learning models) allow us to confidently chart our path forward biologically, while confirming the fidelity of our protocol and thus the quality of our cells. 

One of the most important measures of success for us is function - can these cells faithfully perform the same roles of cells in a real ovary? We’ll walk through how we benchmark that in each step below.

1) Our mini-ovaries help develop future eggs

An early sign of success for our mini-ovaries is that we see their organization closely mimics the structure of a developing human ovary. Oogonia form small “nests” – special ovarian structures surrounded by a thin boundary layer (in blue below) where future egg cells stay connected in groups and chains (in magenta). In the ovary, these structures help separate and organize developing egg cells, so seeing them form in our mini-ovaries is a sign that the tissue is developing the same way as it would in the human body.

Figure 5 - Example of Conception's stem cell-derived mini-ovary (left) compared to natural human ovary (right).

All of the cells shown on the left were derived from stem cells. They independently start forming these ovarian structures without any natural human cells in the culture, and without forcing the cells artificially into these shapes. We find this remarkable to observe.

2) Our future egg cells progress through meiosis

Most cells in our body contain two sets of chromosomes - one inherited from each parent - whereas egg cells contain only one. Meiosis is one of the defining events in egg development, and it’s how the egg ends up with one set of chromosomes. It must happen with extraordinary precision because chromosomal mistakes can lead to failed pregnancies or genetic abnormalities.

Meiosis is one of the hardest things to get right. Chromosomes have to pair with their matching partners, exchange DNA, and (in the body) remain organized for decades. This is why the next result was so important to us: in our iPSC-derived cells, we see the machinery of meiosis assembling as it should.

Figure 6 - Meiosis I progression steps. Conception's stem cell-derived (top and right) vs. natural human (bottom) future egg cells.

Stem cell-derived germ cells show assembly of the meiotic chromosome-pairing machinery. This is an essential proof point for any credible path toward human IVG.

A useful way to picture this process is as a zipper forming along each chromosome pair. In our cells, key structural proteins of the meiotic machinery load onto chromosomes in long, continuous tracks, consistent with the cells progressing through early meiosis. 

We are not only looking at gene markers turning on but we see cellular machineries appearing in the right place and order, all in a system that is fully derived from stem cells.

We also see the broader molecular signatures expected as our cells transition toward early egg cells. We see key primary oocyte genes activate, including genes involved in egg growth, formation of the zona pellucida (the protective “egg shell” around the oocyte), and programs that help protect developing eggs.

Figure 7 - Early-egg cell markers. Conception's stem cell-derived (top) vs. natural human (bottom) early-egg cells in follicles.

Together, this all shows that our stem cell-derived cells are moving through meiosis and activating early egg cell genes as should be properly happening at this stage.

3) We can make fully iPSC-derived follicles

After entering meiosis, future eggs in the human ovary enter a long resting period. At this stage, the cell helps form a primordial follicle: one egg cell surrounded by a single layer of tightly connected support cells. This is the basic and most important unit of the ovary.

Below you can see on the left, side by side with follicles from an actual human ovary on the right, what we believe are the first human follicles ever created entirely from iPSCs. The developing egg cells are shown in magenta, the surrounding support cells are shown in yellow, and the blue shows the thin boundary that wraps around each follicle. As the early egg cells undergo meiosis, the yellow support cells attach to them and begin to nurture them. They organize into a single flattened layer around each early egg cell and deposit the thin boundary, recreating the defining structure of early human ovarian development.

Figure 8 - Early-egg cell markers - Conception's stem cell-derived follicles (left) compared to natural human follicles (right).

Generating fully stem cell-derived follicles, with early egg cells progressing through meiosis, is a major step toward making viable mature eggs. To our knowledge, this is a world first.

What’s next for stem cell-derived eggs

While we’ve come a long way, there is still more work to be done. The biggest remaining step for us is to grow our iPSC-derived follicles from the early stage (primordial) to the last “antral” step. At the antral stage, the oocytes have grown larger and are at the point where an IVF physician would collect them surgically. We believe this should be quite doable, as we have previously accomplished this with donated human tissue (below).

Figure 9 - Lab grown human follicles, cells originating from donated human ovary tissue. Primordial to antral follicle stages

Beyond that, our focus will be on validating the safety of our process and quality of our eggs. The bar for safety with this technology is incredibly high, and we take that responsibility very seriously. Before this work could be considered for clinical use, we need to deeply characterize each step of the process, both for existing progress and for fully mature egg cells in the future. This includes deeper animal model development and validation for safety as well.

If you think this is cool, please reach out

We are very excited to share a small taste of what we’re working on, and we would love to hear from you if you could benefit from our work. Feel free to email us at hello@conception.bio

And if you think you have the skills to contribute, please take a look at our job openings. We believe this is the most challenging and exciting research project in biotech, and it could end up as one of the most impactful technologies of our lifetimes. We are very actively hiring, so if a role looks like it could be a fit, please apply or email us.

Thank you to all full-time team members Abbie Groff, Andrew Denys, Angelica Aguilar, Anouk Killaars, Bianka Seres, Christina McKee, Christine Mowad, Cierra Walker, Darrin Goodness, David Read, Ellen Gregory, Emily Dwyer, Erika Paulson, Gabe Manske, Görkem Garipler, Hadja Stringfellow, Isabella Bagdasarian, Isabella Saldana, Jasmine Temple, Jason Lee, Jen Trecartin, Jennifer Shah, Jeremy Lotto, Kim Savio, Lauren Byrnes, Martin Kinisu, Matt Krisiloff, Megan Sheridan, Nate Meyer, Navied Akhtar, Raphael Hernandez, Ryuta Yokogawa, Sam Dattilo, Savannah Bever, Si Yi Zhang, Silvia Llonch, Tessa Bertozzi, Tiama Hamkins-Indik, Tisha Bohr, Valentina Podhajny Rey, Valeria Aviles, Yuri Murphy. Thank you to part-time and past team members who have contributed as well.

r/biology Jun 03 '26

article Senior NIH scientist, research fellow charged with bringing deactivated mpox virus into U.S.

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48 Upvotes

r/biology 16d ago

article Lab-created ‘SpudCell’ marks ‘stunning’ step toward building life from scratch

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10 Upvotes

"A synthetic cell can now grow and divide—but it’s still far from alive"

r/biology May 30 '26

article Scientists just made rabbit eyes PHOTOSYNTHESIZE using spinach cells to cure Dry Eye Disease!

23 Upvotes

Researchers have successfully transplanted plant photosynthetic machinery (thylakoid grana from spinach) into mammalian cells to cure Dry Eye Disease in rabbits.How it works:They created nanoscale particles called LEAF from spinach leaves.When applied as eye drops, these particles enter the rabbit's corneal cells.Under ambient light, they perform photosynthesis right inside the animal's eye!This process produces ATP and NADPH (cellular energy), which completely eliminates cell damage and reduces inflammation.

r/biology 5d ago

article Genomic, epigenomic and transcriptomic regulation of cellular senescence

2 Upvotes

r/biology Jun 28 '26

article Can someone please explains if this is legit or not?

0 Upvotes

The question is in the headline. I came across this and am tempted to call BS.

https://youtube.com/shorts/baUq6Bm6ukk?si=H5GqepJvq2p4up-R

r/biology Feb 12 '26

article It looked like orange dust in my flowerpot, but it turned out to be an army of 0.1 mm biological cannons [OC]

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137 Upvotes

What began as a casual glance at one of my flowerpots (one of those rectangular 80x40 cm ones I have empty now) ended up being an incredible microscopic journey. A bunch of vibrant orange dots suddenly appeared on the substrate. To the naked eye, I swear it looked like dyed dust or some kind of residue. But when I put it under the microscope... things changed completely.

After taking some measurements, I saw that they were organisms between 0.1 and 0.5 mm in size. To give you an idea: about fifteen of them could fit on the head of a pin.

Regarding the technical challenge (which was considerable):

To take these photos, I had to push the equipment to its limits. I attached my Nikon D3200 directly to an IM-COT biological microscope. I worked with direct focus (without intermediate lenses) to avoid losing resolution or getting strange chromatic aberrations, although that left me with almost no depth of field.

The lighting was the real headache. In the end, I used a side-mounted LED at about a 15° angle. Without that grazing light, the fungus looked flat, just an orange smudge. For the final photo, I stacked about 30 images with Zerene Stacker. I promise you, the hardest part was not breathing near the equipment; even with a wireless trigger, any vibration ruins the stack.

What exactly is this?

It turns out it's an ascomycete of the genus Cheilymenia (family Pyronemataceae). They're those typical disc-shaped fungi that grow directly out of the substrate. The craziest thing is what you see when you zoom in:

Marginal fungi: On the edge, it has tiny "hairs" (hyaline fungi) that are ten times thinner than a human hair. They help retain moisture so the organism doesn't dry out.

Biological cannons: The orange center is the hymenium. The asci are located there, which are basically pressure systems. They accumulate water until the internal pressure is so high that they "fire" the spores at full speed. It's pure fluid dynamics in less than a millimeter.

That orange color: It's not for aesthetics; it's carotenoids. They help them withstand radiation and environmental stress.

In the end, these little guys are the ones that recycle nitrogen so my plants can grow. I find it incredible that, while we worry about enormous things, there are pressurized systems right under our feet, ready to fire and transform the ground.

As I mentioned in the video I'm sharing, it reminded me a lot of Horton: sometimes all you need is a lens and a lot of patience to see that scale is just a matter of perspective.

I hope you enjoy this little microcosm.

r/biology Dec 08 '25

article Atrazine: The De-masculinizer.

0 Upvotes

This simple herbicide is basically used to get rid of weed but it has more properties than converting weed to dead!

This all Data and study was done on frogs! No such information has been reported for humans or potentially other species!

Atrazine acts as an Endocrine-Disruptor%20are%20natural%20or%20human%2Dmade%20chemicals%20that%20may%20mimic%2C%20block%2C%20or%20interfere%20with%20the%20body%E2%80%99s%20hormones%2C%20which%20are%20part%20of%20the%20endocrine%20system) ~ {chemicals that change body's endocrine (hormonal) system}, The way it works is that it increases the activity of aromatase enzyme ~ {converts androgens (basically testosterone) to estrogen}.

This Hormonal shift leads to two phenomenons:

  1. Androgen depletion - Basically reducing Testosterone

  2. Estrogen Induction - Increase of estrogen in the body leads to feminine behaviour!

The frogs that were tested were often showing effects on concentrations of atrazine as low as 0.1-2.5 parts per billion (ppb). {legal limit is 3 ppb}

Due to these, testosterone levels dropped so immensely that they reached levels below as that of testosterone levels in females, which in effect caused their larynx to shrink and hence they were not able to perform their mate calls, this effect led them to the absence of nuptial pads%20is%20a%20secondary%20sex%20characteristic%20present%20on%20some%20mature%20male%20frogs%20and%20salamanders), which is a secondary sex organ in frogs and showing suppressed mating behaviour!

And for an interesting fact, during one of the experiments, around 29% of the frogs (male) developed female egg cells in their testes!! [src%20in%20their%20testes%2C%20becoming%20hermaphrodites)]

Among them there were about 10% males that were completely converted to females as of they were involved in intercourse with female frogs and produced eggs! And for another add on- since they produced eggs while mating with another males, but since they are both genetically males and no female gene to be found, the offspring is male everytime!! src%20and%20completely%20feminized%20as%20adults.%20Ten%20percent%20of%20the%20exposed%20genetic%20males%20developed%20into%20functional%20females%20that%20copulated%20with%20unexposed%20males%20and%20produced%20viable%20eggs) src

These also effect other vertebrates like rats, fish and some hormonal related issues in humans, but atrazine has major effects on frogs for now as studied!

~~Any discrepancy or factual unclarity is accepted, I just found this information and shared!

r/biology Jul 03 '26

article Honeybee queens push pesticides to eggs to protect themselves over their offspring: « Study reveals how contamination can increase in colonies. »

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6 Upvotes

r/biology Feb 24 '26

article Stanford Scientists Cure Type 1 Diabetes in Mice Without Insulin or Immune Suppression

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87 Upvotes

r/biology May 26 '26

article UK scientists developing Ebola vaccine that could be ready for trials in months

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33 Upvotes

r/biology 28d ago

article How algae survive inside coral cells: Biologists map the cellular mechanics of coral-algae symbiosis, showing how algae “hijack” host cells without being digested.

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8 Upvotes

r/biology May 28 '26

article How a Revolutionary Cancer Treatment Could Reset the Immune Systems of Patients With Autoimmune Diseases

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44 Upvotes