Add BrightSurf on Google Email

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

Unveiling the therapeutic potential of abaloparatide in treating periodontal dehiscence

Researchers demonstrate that intraoral administration of abaloparatide combined with orthodontic force supports alveolar bone thickening. ABL-induced alveolar bone formation is linked to the focal adhesion pathway, where FAK activation plays a crucial role.

SourceEditorial Office of West China School of Stomatology, Sichuan University·JournalInternational Journal of Oral Science·TypeExperimental study·DateSep 19, 2025

Scaffold-free cartilage produced using embryonic-derived mesenchymal stem cell spheroids

A new study demonstrates the potential to produce cellular spheroids from clinically relevant embryonic stem cells to generate scaffold-free chondrogenic or osteochondrogenic graft tissues. The researchers successfully cultured ES-MSC cellular spheroids, which matured into neocartilage tissues expressing cartilage-associated genes.

SourceMary Ann Liebert, Inc./Genetic Engineering News·JournalTissue Engineering Part A·TypeExperimental study·DateAug 13, 2025

Osteogenesis – Angiogenesis coupling via interlineage paracrine signaling

Researchers have discovered a specialized mesenchymal-endothelial crosstalk that supports angiogenesis and osteogenesis, enabling periodontal bone regeneration. This communication network between mesenchymal stem cells and endothelial cells drives tissue repair and regeneration, holding promise for dental therapeutic strategies and bro...

SourceEditorial Office of West China School of Stomatology, Sichuan University·JournalInternational Journal of Oral Science·TypeExperimental study·DateAug 5, 2025

Aging disrupts osteocyte networks and bone structure, with greater impact in males

Researchers used a premature aging mouse model to study the effects of age and sex on osteocyte networks and bone structure. Aged PolgA mice showed accelerated skeletal aging, reduced osteocyte connectivity, and increased frailty, with males exhibiting more pronounced changes.

SourceEditorial Office of West China School of Stomatology, Sichuan University·JournalBone Research·TypeExperimental study·DateJun 10, 2025

Innovative apatite nanoparticles for advancing the biocompatibility of implanted biodevices

Researchers developed surface-modified apatite coatings using pH control to enhance cell adhesion and improve the biocompatibility of implants. The study found that controlling the nanoscale surface layer of apatite nanoparticles leads to better binding affinity with biological tissues.

SourceNagaoka University of Technology·JournalACS Applied Materials & Interfaces·TypeExperimental study·DateFeb 4, 2025

New bioprinting technique creates functional tissue 10x faster

A team of researchers at Penn State developed a novel bioprinting technique that uses spheroids to create complex tissue, producing tissue 10-times faster and with high cell density. The technique enables the rapid fabrication of functional tissues and organs, opening new opportunities for regenerative medicine.

SourcePenn State·JournalNature Communications·TypeExperimental study·DateDec 3, 2024

Special issue: Osteogenesis imperfecta from bench to bedside and from cradle to grave

This special issue of Calcified Tissue International presents a collection of critical reviews and original research articles on osteogenesis imperfecta (OI), covering essential aspects of the condition, including its nosology, genetics, and clinical presentation. The contributions also discuss treatment strategies for both children an...

SourceInternational Osteoporosis Foundation·TypeCommentary/editorial·DateNov 29, 2024

UVA develops a ‘Google earth’ view of bone — with an eye toward disease prevention

A University of Virginia engineer developed a workflow to combine advanced imaging technologies for improved understanding of porous bone, which could inform disease detection. The method allows for three-dimensional rendering of bone structure across various length scales.

SourceUniversity of Virginia School of Engineering and Applied Science·JournalScientific Reports·TypeImaging analysis·DateSep 25, 2024

$2.4 million grant helping MCG scientists better understand what happens to our skeleton as we age

Researchers are studying the role of stress hormones and mineralocorticoid receptors in bone health as we age. The goal is to understand how balance between these factors affects our skeletons. By investigating this complex relationship, scientists hope to develop new insights into osteoporosis and other age-related bone disorders.

Nanoscopic imaging aids in understanding protein, tissue preservation in ancient bones

A new study uses nanoscopic 3-D imaging to analyze ancient bone samples, revealing insights into protein and tissue preservation during fossilization. The technique shows that Ice Age bones still retain original collagen protein frameworks, offering a potential proxy for screening specimen suitability for molecular sequencing.

SourceNorth Carolina State University·JournaliScience·TypeImaging analysis·DateJul 23, 2024

Mechanobiomaterials: A rising field using mechanobiology principles to program the functional biomaterials

Researchers develop mechanobiomaterials inspired by biomechanics to modulate biological responses with material-tissue mechanical interactions. This approach aims to create biomaterials that can adapt to changing mechanical environments in vivo, enhancing the body's regenerative potential and repairing various tissues.

SourceShanghai Jiao Tong University Journal Center·JournalMechanobiology in Medicine·DateJun 28, 2024

Global consensus for sarcopenia

A new global definition of sarcopenia is proposed, aiming to unify research and clinical practice. The definition may help identify low muscle mass or strength in older people, increasing the risk of poor outcomes such as fragility and disability.

SourceImpact Journals LLC·JournalAging-US·TypeCommentary/editorial·DateJun 26, 2024

Scientists develop innovative maleic acid-treated bacterial cellulose gel enhancing bone repair

Scientists have developed a novel maleic acid-treated bacterial cellulose gel that significantly improves bone repair outcomes. The gel's enhanced biocompatibility and osteogenic gene expression promote cell proliferation and differentiation, paving the way for potential applications in tissue engineering.

SourceJournal of Bioresources and Bioproducts·JournalJournal of Bioresources and Bioproducts·TypeExperimental study·DateApr 15, 2024

Do some mysterious bones belong to gigantic ichthyosaurs?

Fossilized bone fragments from Western and Central Europe have been identified as belonging to gigantic ichthyosaurs due to their unique microstructure. The discovery sheds new light on an ongoing debate among paleontologists, suggesting that these massive sea creatures could have reached lengths similar to the modern blue whale.

SourceUniversity of Bonn·JournalPeerJ·TypeExperimental study·DateApr 9, 2024

Opto-RANK: A light switch for osteoclasts

Scientists from Tokyo Medical and Dental University have created Opto-RANK, a light-activated form of RANK that can induce osteoclast differentiation. The treatment approach uses blue light activation to stimulate local bone resorption, making it a promising tool for treating abnormal calcification diseases and orthodontic issues.

SourceTokyo Medical and Dental University·JournalScientific Reports·DateMar 21, 2024

Wound-homing molecule accelerates tissue repair

A study published in Nature Communications reports the discovery of a wound-homing molecule called CAR peptide, which accelerates tissue repair by activating natural healing pathways. The treatment shows promise for treating various injuries, including muscle ruptures and bone fractures, without forming less functional scar tissue.

SourceTampere University·JournalNature Communications·DateFeb 14, 2024

Replacing bone saws with smart lasers

Researchers at the University of Basel have developed a system that combines three functions: cutting bone, controlling depth, and differentiating tissue types. This autonomous system uses three lasers to make precise incisions with minimal human interference.

SourceUniversity of Basel·JournalLasers in Surgery and Medicine·DateDec 5, 2023

Has the COVID-19 pandemic compromised bone health?

A study published in the American Journal of Human Biology found that COVID-19 has negatively impacted bone tissue, particularly among young adults. The research indicates a significant decrease in bone mineral density during the pandemic compared to pre-pandemic measurements.

SourceWiley·JournalAmerican Journal of Human Biology·DateNov 22, 2023

Johns Hopkins Medicine researchers create machine learning model to calculate chemotherapy success in patients with osteosarcoma

Researchers at Johns Hopkins Medicine created a machine learning model to calculate percent necrosis in osteosarcoma patients after chemotherapy. The model achieved an 85% positive correlation with musculoskeletal pathologist results, increasing accuracy to 99% when one outlier was removed. This could help provide patients with earlier...

SourceJohns Hopkins Medicine·JournalJournal of Orthopaedic Research®·DateNov 2, 2023

Oxygen vacancy boosting Fenton reaction: A novel approach to fight bacterial infection in bone scaffold

Scientists from Central South University develop a novel approach to address bacterial infection in bone transplantation by enriching H2O2 and amplifying the Fenton reaction. The technique enhances biocompatibility and safety, promising reduced transplant failures and post-operative complications.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateOct 22, 2023

3D/4D printed bio-piezoelectric smart scaffolds for next-generation bone tissue engineering

Researchers developed bio-piezoelectric smart scaffolds for next-generation bone tissue engineering, demonstrating potential for clinical applications. The scaffolds can reconstruct desired tissue EM through non-invasive ultrasonic stimulation, promoting cell adhesion and osteogenic differentiation.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateJul 18, 2023

Will robotic assisted in situ bioprinting become the next generation of surgical modality for cartilage repair?

The technique has the potential to overcome major shortcomings associated with conventional bioprinting, allowing real-time wound treatment and immediate anastomosis with native tissue. However, challenges remain, including integration with surrounding tissues and limited access to defect sites in articular joints.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateJun 25, 2023

Does weight loss surgery harm adolescents’ bones?

A study found that sleeve gastrectomy decreases bone mineral density and strength in adolescents and young adults. Participants who underwent weight loss surgery lost significant amounts of weight and experienced reductions in abdominal fat tissue and muscle mass.

SourceWiley·JournalJournal of Bone and Mineral Research·DateApr 19, 2023

Healing the unhealable: New approach helps bones mend themselves

Researchers developed a novel approach that promotes bone regeneration in mice without implantation of bone tissue or biomaterials. By carefully stretching the skull along its sutures, they activated skeletal stem cells that reside in these wiggly seams, repairing damage to the skull that would not have healed on its own.

SourceUniversity of Pittsburgh·JournalProceedings of the National Academy of Sciences·TypeExperimental study·DateApr 14, 2023

Fiber sensing scientists invent 3D printed fiber microprobe for measuring in vivo biomechanical properties of tissue and even single cell

Researchers at Shenzhen University have developed a compact fiber optical nanomechanical probe (FONP) to measure in vivo biomechanical properties of tissue and even single cells. The high-precision mechanical sensing system enables accurate measurements with spring constants as low as 2.1 nanonewtons.

SourceInternational Journal of Extreme Manufacturing·JournalInternational Journal of Extreme Manufacturing·DateFeb 10, 2023

Packaged DNA: MLU researchers develop new method to promote bone growth

Researchers at MLU and partners developed a new process coating implant materials with a gene-activated biomaterial that induces stem cells to produce bone tissue. This method, published in Advanced Healthcare Materials, stimulates bone healing in a targeted manner with fewer side effects than existing methods.

SourceMartin-Luther-Universität Halle-Wittenberg·JournalAdvanced Healthcare Materials·TypeExperimental study·DateFeb 9, 2023

American College of Physicians recommends bisphosphonates for initial treatment for osteoporosis in males and postmenopausal females diagnosed with primary osteoporosis

The American College of Physicians recommends bisphosphonates as initial pharmacologic treatment to reduce fracture risk in osteoporosis patients. Long-term use may increase risks, so treatment duration should be limited to 5 years or less.

SourceAmerican College of Physicians·JournalAnnals of Internal Medicine·TypeSystematic review·DateJan 2, 2023