Characterization and Multilineage Potential of Cells Derived from Isolated Microvascular Fragments

Abstract

A number of therapies are being developed that use microvessels isolated from adipose tissue (microvascular fragments [MVFs]) to improve tissue perfusion and implant survival. Because it has been demonstrated that stem cells are associated with micro vessels, the purpose of these studies was to gain further insight into the stem cells associated with MVFs to better understand their therapeutic potential. Cells derived from MVFexplants were compared with adipose derived stemcells (ASCs) based on the expression of cell surface proteins form esenchymalstem cells and their capacity for angiogenic, neurogenic, adipogenic, and osteogenic differentiation. The expression of cell surface proteins for mesenchymal stem cell markers was similar between MVF derived cells and ASCs; however, the increase in markers consistent with endothelial cells and pericytes was accompanied by an improved ability to form capillary like networks when cultured on matrigel. MVF derived cells had increased neuregulin, leptin, and osteopontin expression compared with ASCs when exposed to neurogenic, adipogenic, and osteogenic induction media, respectively. The stem cell functionality of cells derived from MVFs is retained after their isolation. This helps to explain the ability of MVFs to improve tissue perfusion and has implications for the use of MVFs as a means to deliver stem cells within their niche.

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Document Details

Document Type
Technical Report
Publication Date
May 24, 2014
Accession Number
ADA615210

Entities

People

  • Beth E. Pollot
  • Catherine L. Ward
  • Christopher R. Rathbone
  • Jennifer S. McDaniel
  • Marcello Pilia

Organizations

  • United States Army Institute of Surgical Research

Tags

Communities of Interest

  • Biomedical

DTIC Thesaurus Topics

  • Adipose Tissue
  • Anti-Bacterial Agents
  • Blood
  • Blood Vessels
  • Cell Physiological Processes
  • Cells
  • Cells (Biology)
  • Connective Tissue
  • Connective Tissue Cells
  • Endothelial Cells
  • Engineering
  • Microvessels
  • Muscle Fibers
  • Myoblasts
  • Regenerative Medicine
  • Skeletal Muscle
  • Stem Cells

Fields of Study

  • Biology

Readers

  • Immunology and Pathology
  • Medical Imaging.
  • Molecular Biology and Genetics

Technology Areas

  • Biotechnology