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Modifying heart cell metabolism unlocks self-repair system after heart attack

Researchers at Sanford Burnham Prebys discovered that blocking an energy transfer enzyme shifts mammalian hearts into a regenerative state, promoting regeneration and improving recovery after a heart attack. By modulating heart cell metabolism, scientists can potentially awaken the heart's dormant regenerative abilities.

SourceSanford Burnham Prebys·JournalNature Cardiovascular Research·TypeExperimental study·DateSep 28, 2026

New ‘nanobone’ could help body regrow bone

Researchers develop biodegradable nanobone material that activates body's own healing properties to regrow bone, reducing need for invasive procedures. The material generates 80% more new bone than a material control and activates a key bone-repair growth factor with 10 times the level achieved using conventional methods.

SourceUniversity of Sydney·JournalACS Nano·TypeExperimental study·DateSep 3, 2026

Breaking down barriers to cardiac regeneration

Scientists have uncovered a new mechanism used by heart cells to resist reprogramming and found that carbohydrate sulfotransferase 7 (CHST7) is the most potent preventer of reprogramming in mouse and human cells. By targeting CHST7, researchers may develop treatments to help the heart fix itself after injury.

SourceSanford Burnham Prebys·JournalNature Communications·TypeExperimental study·DateJul 28, 2026

Video game stroke rehab restores arm movement in chronic stroke survivors

A new study from Northwestern University developed a customized video game to help chronic stroke survivors regain lost arm function. After six weeks of therapy, participants showed significant improvement in arm function and daily activities, with scores improving up to 7.8 times that of the control group.

SourceNorthwestern University·JournalNeurorehabilitation and Neural Repair·TypeRandomized controlled/clinical trial·DateJun 9, 2026

Unlocking the chemical blueprint for next-generation water filters

A comprehensive review of biochar-hydrogel composites reveals that their effectiveness lies in the surface chemistry of advanced composite materials. The study identifies function-specific performance and emphasizes the need for standardized durability testing to ensure long-term stability and scalability.

SourceBiochar Editorial Office, Shenyang Agricultural University·JournalCarbon Research·TypeLiterature review·DateMay 27, 2026

What our meadows reveal about the future

A German-Swiss research team found that spatial data can remarkably predict biodiversity changes over time, identifying areas under pressure. The study used unique data from 150 meadows and shows that land use intensification leads to declining biodiversity.

SourceBielefeld University·JournalNature Ecology & Evolution·TypeObservational study·DateNov 26, 2025

Rejuvenating the blood: A new pharmacological strategy targeting RhoA in haematopoietic stem cells

Researchers develop ex vivo treatment of blood stem cells with Rhosin, a RhoA inhibitor, to rejuvenate them and improve the production of healthy blood cells. This strategy targets the core of the ageing process, making blood stem cells more capable of regenerating and producing new healthy blood cells.

SourceIDIBELL-Bellvitge Biomedical Research Institute·JournalNature Aging·TypeExperimental study·DateNov 24, 2025

From warriors to healers: a muscle stem cell signal redirects macrophages toward tadpole tail regeneration

Muscle stem cells secrete c1qtnf3, which redirects macrophages from immune to regenerative functions, promoting tadpole tail regeneration. This discovery offers insights into the regenerative capabilities of certain animals and paves the way for further research into potential applications in mammals.

SourceSchool of Science, The University of Tokyo·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateNov 17, 2025

Fight or flight—and grow a new limb

Researchers at Harvard University have discovered that salamanders rely on the sympathetic nervous system to activate stem cells throughout the body, enabling them to regrow entire limbs. This finding may provide insights into developing regenerative treatments for humans, particularly in limb regeneration and organ repair.

SourceHarvard University·JournalCell·TypeExperimental study·DateOct 24, 2025

New research shows a tiny, regenerative worm could change our understanding of healing

New research from the Stowers Institute for Medical Research reveals planarian stem cells ignore their nearest neighbors and respond to signals further away in the body. This discovery may help explain the flatworm's extraordinary ability to regenerate and offer clues for developing new ways to replace or repair tissues in humans.

SourceStowers Institute for Medical Research·JournalCell Reports·TypeExperimental study·DateOct 15, 2025

Seeing with fresh eyes: Snails as a system for studying sight restoration

Researchers have established apple snails as a system to study eye regeneration, which may hold the key for restoring vision due to damage and disease. The team discovered that the snail eye is anatomically similar to humans and can regrow itself, with genes such as pax6 playing a crucial role in development.

SourceStowers Institute for Medical Research·JournalNature Communications·TypeExperimental study·DateAug 6, 2025

Fruit fly study reveals a gene’s hidden ability to keep regrowth on the right track

A recent study has identified a gene, Zelda, that plays a crucial role in regulating the end of regrowth in fruit fly larvae. The researchers found that Zelda helps control the activity of genes involved in tissue development, revealing a new understanding of the regenerative process.

3D printing in vivo using sound

Researchers have developed a technique for in vivo 3D printing of polymers using sound localization, which can be used for drug delivery, tissue repair, and internal wound sealing. The new method, called deep tissue in vivo sound printing (DISP), has been successfully tested in mice and shows promising results.

USC Stem Cell mouse study identifies shared genes involved in hearing and vision regeneration

A USC Stem Cell mouse study has identified shared genes involved in regenerating cells in the ear and eye, which could lead to new treatments for hearing and vision loss. The researchers discovered that inhibiting a specific protein, p27Kip1, can encourage regeneration in both organs.

SourceKeck School of Medicine of USC·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateMar 31, 2025

USC Stem Cell study breaks the silence on how fish and lizards regenerate hearing

A USC Stem Cell study has identified key gene regulators that enable some deafened animals, including fish and lizards, to naturally regenerate their hearing. The researchers found a class of DNA control elements known as 'enhancers' that amplify the production of a protein called ATOH1, which induces sensory cells in the inner ear.

SourceKeck School of Medicine of USC·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateDec 9, 2024

Stowers scientists uncover a critical component that helps killifish regenerate their fins

A recent study published in iScience found that the length of time cells spend engaged in the repair process is also key to regulating regeneration in African killifish. The researchers discovered that skin cells launch a genetic program that primes the whole animal to prepare for a repair response, guiding repair cells to get to work.

SourceStowers Institute for Medical Research·JournaliScience·TypeExperimental study·DateSep 26, 2024

Following the ‘BATT Signal:’ A new signaling pathway controlling planarian germ cells

In planarian flatworms, biogenic monoamines play a critical role in regulating female and male germ cells. Researchers discovered that these molecules form a novel signaling pathway controlling planarian germ cells, producing the 'BATT Signal' to regulate reproductive development. The study highlights the importance of monoamine conjug...

SourceMorgridge Institute for Research·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateJun 25, 2024