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Zitnay, J.

Publications and source records attributed to Zitnay, J..

2 recordsLinked to original sources

Tenascin C Deletion Impairs Tendon Healing and Functional Recovery After Rotator Cuff Repair

The biological factors that affect healing after rotator cuff repair (RCR) are not well understood. Genetic variants in the extracellular matrix protein Tenascin C (TNC) are associated with impaired tendon healing and it is expressed in rotator cuff tendon tissue after injury, suggesting it may have a role in the repair process. The purpose of the current study was to determine the role of TNC on tendon healing after RCR in a murine model. The supraspinatus tendon was transected and repaired on the left shoulder of Wild-Type (WT-RCR), Tenascin C null (Tnc--RCR) and Tnc heterozygous (Tnc+/--RCR) mice. Controls included the unoperated, contralateral shoulder of WT-RCR, Tnc--RCR, Tnc+/--RCR mice and unoperated shoulders from age and genotype matched controls. We performed histologic, activity testing, RNA-seq, and biomechanical analyses. At 8-weeks post-RCR, Tnc- and Tnc+/- mice had severe bone and tendon defects following rotator cuff repair. Tnc--RCR mice had reduced activity after rotator cuff repair including reduced wheel rotations, wheel duration, and wheel episode average velocity compared with WT-RCR. Loss of Tnc following RCR altered gene expression in the shoulder, including upregulation of sex hormone and WNT pathways and a downregulation of inflammation and cell cycle pathways. Tnc- mice had similar biomechanical properties after repair as WT. Further research is required to evaluate tissue specific alterations of Tnc, the interactions of Tnc and sex hormone and inflammation pathways as well as possible adjuvants to improve enthesis healing in the setting of reduced TNC function.

genetics↗

CRISPRi-Driven Osteogenesis in Adipose-Derived Stem Cells for Bone Healing and Tissue Engineering

Engineered bone tissue synthesized from mesenchymal stem cell progenitors has numerous applications throughout the fields of regenerative medicine and tissue engineering. However, these multipotent cells offer little tissue-building assistance without differentiation direction from environmental cues such as bone morphogenetic proteins (BMPs). Unfortunately, BMP dosing and environmental cues can be difficult to control both in vitro and after in vivo delivery. Several BMP antagonists are expressed by cells in response to BMP dosing that bind extracellular BMPs and reduce their effective concentration. Here, we use CRISPR-guided gene-modulation technology to downregulate the expression of three BMP antagonists, noggin, gremlin-1, and gremlin-2, in adipose-derived stem cells (ASCs). We show that regulating noggin using this method results in ASC osteogenesis without the need for exogenous growth factors. To demonstrate the versatility and the precision capabilities of these engineered cells, we employ them with CRISPRa multiplex-engineered chondrogenic cells as a proof-of-concept tissue engineering application by creating a tissue gradient similar to the fibrocartilage-to-mineralized-fibrocartilage gradient in the tendon/ligament enthesis or intervertebral disc attachment. In doing so, we show that multiple CRISPR multiplex engineered cell types can be utilized in concert to provide a high degree of tissue developmental control without the use of exogenous growth factors.

bioengineering↗