Publications by authors named "Elsa D Silva"

Article Synopsis
  • Pericardial fluid (PF) may act as a source of molecular targets for repairing heart damage after a heart attack (myocardial infarction), especially focusing on microRNAs (miRs) that modulate the heart's response.
  • PF was collected from patients with different types of heart attacks (NSTEMI and STEMI) and a control group, and analyzed for miR content through small RNA sequencing to understand its effects on heart cells.
  • The study found that PF from STEMI patients contains a mix of pro-fibrotic and anti-fibrotic miRs, with miR-22-3p showing potential to inhibit harmful heart cell activation, making PF a promising tool for discovering new diagnostic and therapeutic targets in
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Cardiovascular diseases remain the leading cause of death, largely due to the limited regenerative capacity of the adult mammalian heart. Yet, neonatal mammals were shown to regenerate the myocardium after injury by increasing the proliferation of pre-existing cardiomyocytes. Re-activation of cardiomyocyte proliferation in adulthood has been considered a promising strategy to improve cardiac response to injury.

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So far, opposing outcomes have been reported following neonatal apex resection in mice, questioning the validity of this injury model to investigate regenerative mechanisms. We performed a systematic evaluation, up to 180 days after surgery, of the pathophysiological events activated upon apex resection. In response to cardiac injury, we observed increased cardiomyocyte proliferation in remote and apex regions, neovascularization, and local fibrosis.

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Photocrosslinkable magnetic hydrogels are attracting great interest for tissue engineering strategies due to their versatility and multifunctionality, including their remote controllability ex vivo, thus enabling engineering complex tissue interfaces. This study reports the development of a photocrosslinkable magnetic responsive hydrogel made of methacrylated chondroitin sulfate (MA-CS) enriched with platelet lysate (PL) with tunable features, envisioning their application in tendon-to-bone interface. MA-CS coated iron-based magnetic nanoparticles were incorporated to provide magnetic responsiveness to the hydrogel.

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