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Biology subjects

Zila, L.

Publications and source records attributed to Zila, L..

2 recordsLinked to original sources

Age-Dependent Fibroblast Programs Govern Regenerative and Fibrotic Tendon Repair

Tendon injuries often result in fibrosis, compromising function and predisposing to re-injury. Here, we used a full-width, non-repair Achilles tendon transection model in young (3 weeks old) and adult (18-20 weeks) rats to elucidate the cellular mechanisms governing regenerative versus fibrotic healing. Functional and biomechanical analyses revealed that young tendons recovered motion and load-bearing capacity more rapidly but exhibited more fibrotic early healing. Single-nuclei RNA sequencing identified seven major cell populations within the connective tissue compartment. Adult tendons maintained a "synthetic fibroblast" population marked by upregulated ECM synthesis, reduced stress-related gene expression, whereas young tendons favored expansion of Cxcl12/Lrp6/Gas6 fibrotic fibroblasts linked to oxidative and pro-angiogenic signaling. The young group showed sustained activation of Nox4-Gas6 pathways driving a self-reinforcing fibrotic circuit. These findings define a fibroblast lineage bifurcation that dictates oxidative stress signaling as a key regulator of fibrotic remodeling, highlighting potential therapeutic targets to promote regenerative tendon repair.

developmental biology↗

Modulating Inflammation in Post-Traumatic Osteoarthritis using iPSC-derived Anti-inflammatory Macrophages

Post-traumatic osteoarthritis (PTOA) is a common long-term consequence of joint injury and a major cause of chronic pain and disability, yet no disease-modifying therapies are currently available. A central barrier to effective intervention is the persistence of maladaptive synovial inflammation, driven in part by macrophage-mediated signaling that sustains tissue degeneration and pain. Here, we developed a scalable, chemically defined platform to generate human induced pluripotent stem cell (iPSC)-derived anti-inflammatory macrophages (iMac-M2) as an off-the-shelf cell therapy designed to restore joint immune homeostasis after injury. These cells maintained a stable anti-inflammatory phenotype and function under osteoarthritis-relevant inflammatory conditions and suppressed inflammatory and catabolic responses in human joint cell co-culture systems. In a preclinical model of PTOA, intra-articular delivery of iMac-M2 after injury improved functional and structural outcomes while modulating synovial inflammatory and pain-associated transcriptional programs. Treatment was well tolerated, with no evidence of systemic immune activation or ectopic tissue formation. Together, these findings support iPSC-derived macrophage therapy as a clinically translatable immunomodulatory strategy to interrupt early inflammatory drivers of PTOA and preserve joint health following injury.

cell biology↗