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Biology subjects

Smith, K. K.

Publications and source records attributed to Smith, K. K..

2 recordsLinked to original sources

Heteroplasmic Mitochondrial Genetic Variation in the Human Heart

Whether heteroplasmic mitochondrial genetic variants in readily accessible tissues (blood, skeletal muscle) reflect those in the human heart (atrial appendage, left ventricle) is unknown. Using next generation sequencing data from paired tissue samples (n=233) collected postmortem in the Genotype-Tissue Expression project, we identified 558 unique heteroplasmic mitochondrial genetic variants across the four tissues, of which only 13% were shared across all four tissue sites. Between the two cardiac sites, 61% of heteroplasmic mitochondrial genetic variants were unique to one site. A greater proportion of the heteroplasmic variants were non-synonymous or frameshift variants in the muscle sites compared to blood or those variants shared across all four tissues. Compared to blood, the total number of heteroplasmic variants was higher in cardiac tissue, which was associated with advancing age. Our findings suggest that human cardiac tissue has unique heteroplasmic mtDNA variants and may be relevant to aging-related diseases.

genetics↗

Photoreactive hydrogel stiffness influences volumetric muscle loss repair

Volumetric muscle loss (VML) injuries are characterized by permanent loss of muscle mass, structure, and function. Hydrogel biomaterials provide an attractive platform for skeletal muscle tissue engineering due to the ability to easily modulate their biophysical and biochemical properties to match a range of tissue characteristics. In this work we successfully developed a mechanically tunable hyaluronic acid (HA) hydrogel system to investigate the influence of hydrogel stiffness on VML repair. HA was functionalized with photoreactive norbornene groups to create hydrogel networks that rapidly crosslink via thiol-ene click chemistry with tailored mechanics. Mechanical properties were controlled by modulating the amount of matrix metalloproteinase (MMP)-degradable peptide crosslinker to produce hydrogels with increasing elastic moduli of 1.1 {+/-} 0.002, 3.0 {+/-} 0.002, and 10.6 {+/-} 0.006 kPa mimicking a relevant range of developing and mature muscle stiffnesses. Functional muscle recovery was assessed following implantation of the HA hydrogels by in situ photopolymerization into rat latissimus dorsi (LD) VML defects at 12 and 24 weeks post-injury. After 12 weeks, muscles treated with medium stiffness (3.0 kPa) hydrogels produced maximum isometric forces most similar to contralateral healthy LD muscles. This trend persisted at 24 weeks post-injury, suggestive of sustained functional recovery. Histological analysis revealed a significantly larger zone of regeneration with more de novo muscle fibers following implantation of medium stiffness hydrogels in VML-injured muscles compared to other experimental groups. Lower (low and medium) stiffness hydrogels also appeared to attenuate the chronic inflammatory response characteristic of VML injuries, displaying similar levels of macrophage infiltration and polarization to healthy muscle. Together these findings illustrate the importance of hydrogel mechanical properties in supporting functional repair of VML injuries.

bioengineering↗