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Biology subjects

Irwin, R. M.

Publications and source records attributed to Irwin, R. M..

4 recordsLinked to original sources

Competing effects modulate the rate of poly(A) RNA deadenylation in a biomolecular condensate

The unique solvent milieu found in biomolecular condensates can control cellular enzymatic reactions and shift reaction kinetics by modulating reactant concentrations, structural dynamics, and enzyme activities. Here we explore the interplay of multiple regulatory factors within a condensate to control poly(A) RNA deadenylation, the first and rate-limiting step in mRNA turnover. The deadenylase CNOT7, a subunit of the CCR4-NOT deadenylation complex, localizes to cytoplasmic RNA granules and shows increased degradation activity in vitro in condensates formed by the C-terminal low complexity disordered region of CAPRIN1, a component of RNA granules. We use a combination of enzymatic assays, kinetic modeling, microscopy, Nuclear Magnetic Resonance (NMR) spectroscopy, and molecular dynamics simulations to deconvolute and define the components that underlie this enhancement. We found that enzyme and RNA are concentrated in condensates relative to buffer, which increases CNOT7 activity, while the equilibrium between CNOT7s active and inactive states remains unchanged. The concentration-dependent increase in enzymatic rates is counterbalanced by a substantial decrease in the enzymes catalytic efficiency, likely due to slower diffusion of CNOT7 and RNA within the condensates, which lessens the probability of enzyme-substrate complex formation. Molecular dynamics simulations reveal CNOT7-CAPRIN1 interactions that rely on conserved CAPRIN1 sequence features, hinting at an evolutionarily conserved role for CAPRIN1 condensation. With this quantitative kinetic analysis, we describe the multifaceted mechanism behind regulation of CNOT7 deadenylation by a condensate environment. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=107 SRC="FIGDIR/small/736149v2_ufig1.gif" ALT="Figure 1"> View larger version (39K): org.highwire.dtl.DTLVardef@51cd47org.highwire.dtl.DTLVardef@7bfccaorg.highwire.dtl.DTLVardef@114375org.highwire.dtl.DTLVardef@163f4ef_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Loss of connexin 43 in cartilage causes mitochondrial dysfunction and accelerates post-traumatic osteoarthritis progression

Osteoarthritis (OA) is a major cause of chronic pain and disability worldwide, characterized by progressive degeneration of cartilage and subchondral bone. Post-traumatic OA (PTOA) develops in as many as 25-50% of individuals following major joint injury, making it a leading cause of OA in younger and otherwise healthy populations.1,2 Connexin 43 (Cx43), a gap junction protein involved in intercellular communication and cellular stress responses, has been linked to OA; however, its role in the progression of PTOA remains unclear. Here, we examined how cartilage-specific loss of Cx43 influences PTOA and chondrocyte metabolic function. Using a murine model of conditional Cx43 deletion in cartilage, we demonstrate that male knockout mice exhibited severe cartilage surface damage and matrix loss, whereas female knockout mice showed cartilage thinning accompanied by reduced chondrocyte hypertrophy, decreased subchondral bone density, and increased osteophyte formation. Thus, loss of Cx43 disrupts cartilage integrity and osteochondral remodeling in a sex-specific manner, predisposing joints to maladaptive bone changes and cartilage degeneration. Complementary mechanistic studies in human articular chondrocytes revealed that Cx43 deficiency impairs mitochondrial respiration, reduces spare respiratory capacity, and lowers ATP production, consistent with compromised cellular bioenergetics. Together, these findings identify Cx43 as an important coordinator of metabolic and structural responses to joint injury. These results position Cx43 as a context-dependent regulator of joint homeostasis and suggest that maintenance of Cx43 expression may support cartilage resilience following injury.

cell biology↗

Delayed lubricin injection improves cartilage repair tissue quality in an in vivo rabbit osteochondral defect model

Osteochondral lesions (OCL) are common among young patients and often require surgical interventions since cartilage has a poor capacity for self-repair. Bone marrow stimulation (BMS) has been used clinically for decades to treat OCLs, however a persisting challenge with BMS and other cartilage repair strategies is the inferior quality of the resulting fibrocartilaginous repair tissue. Lubrication-based therapies have the potential to improve the quality of cartilage repair tissue as joint lubrication is linked to local cartilage tissue strains and subsequent cellular responses including death and apoptosis. Recently, a full length recombinant human lubricin (rhLubricin) was developed and has been shown to lower friction in cartilage. This study investigated the effect of a single delayed injection of rhLubricin on cartilage repair in an in vivo rabbit OCL model using gross macroscopic evaluation, surface profilometry, histology, and tribology. Moderate improvement in macroscopic scores for cartilage repair were observed. Notably, quantitative analysis of Safranin-O histology showed that rhLubricin treated joints had significantly higher glycosaminoglycan content compared to saline treated joints, and there were no differences in repair integration between groups. Furthermore, rhLubricin treated joints had significantly lower friction coefficients tested across three sliding speeds compared to saline treated joints (rhLubricin: 0.15 {+/-} 0.03 at 0.1 mm/s to 0.12 {+/-} 0.03 at 10 mm/s, Saline: 0.22 {+/-} 0.06 at 0.1 mm/s to 0.19 {+/-} 0.05 at 10 mm/s). Overall, a single delayed injection of rhLubricin improved the quality and lubricating ability of the repair cartilage tissue without inhibiting repair tissue integration.

bioengineering↗

Connexin 43 Regulates Intercellular Mitochondrial Transfer from Human Mesenchymal Stromal Cells to Chondrocytes

BackgroundThe phenomenon of intercellular mitochondrial transfer from mesenchymal stromal cells (MSCs) has shown promise for improving tissue healing after injury and has potential for treating degenerative diseases like osteoarthritis (OA). Recently MSC to chondrocyte mitochondrial transfer has been documented, but the mechanism of transfer is unknown. Full-length connexin43 (Cx43, encoded by GJA1) and the truncated internally translated isoform GJA1-20k have been implicated in mitochondrial transfer between highly oxidative cells, but have not been explored in orthopaedic tissues. Here, our goal was to investigate the role of Cx43 in MSC to chondrocyte mitochondrial transfer. In this study, we tested the hypotheses that (a) mitochondrial transfer from MSCs to chondrocytes is increased when chondrocytes are under oxidative stress and (b) MSC Cx43 expression mediates mitochondrial transfer to chondrocytes. MethodsOxidative stress was induced in immortalized human chondrocytes using tert-Butyl hydroperoxide (t-BHP) and cells were evaluated for mitochondrial membrane depolarization and reactive oxygen species (ROS) production. Human bone-marrow derived MSCs were transduced for mitochondrial fluorescence using lentiviral vectors. MSC Cx43 expression was knocked down using siRNA or overexpressed (GJA1+ and GJA1-20k+) using lentiviral transduction. Chondrocytes and MSCs were co-cultured for 24 hrs in direct contact or separated using transwells. Mitochondrial transfer was quantified using flow cytometry. Co-cultures were fixed and stained for actin and Cx43 to visualize cell-cell interactions during transfer. ResultsMitochondrial transfer was significantly higher in t-BHP-stressed chondrocytes. Contact co-cultures had significantly higher mitochondrial transfer compared to transwell co-cultures. Confocal images showed direct cell contacts between MSCs and chondrocytes where Cx43 staining was enriched at the terminal ends of actin cellular extensions containing mitochondria in MSCs. MSC Cx43 expression was associated with the magnitude of mitochondrial transfer to chondrocytes; knocking down Cx43 significantly decreased transfer while Cx43 overexpression significantly increased transfer. Interestingly, GJA1-20k expression was highly correlated with incidence of mitochondrial transfer from MSCs to chondrocytes. ConclusionsOverexpression of GJA1-20k in MSCs increases mitochondrial transfer to chondrocytes, highlighting GJA1-20k as a potential target for promoting mitochondrial transfer from MSCs as a regenerative therapy for cartilage tissue repair in OA.

bioengineering↗