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Novel aspects of parenchymal-mesenchymal interactions: from cell types to molecules and beyond
Carolina Bluguermann1, Ling Wu, Frank Petrigliano
1Department of Orthopaedic Surgery, Orthopaedic Hospital Research Center, David Geffen School of Medicine, University of California at Los Angeles (UCLA), Los Angeles, CA, USA.
Abstract:
Mesenchymal stem or stromal cells (MSCs) were initially isolated from the bone marrow and received their name on the basis of their ability to differentiate into multiple lineages such as bone, cartilage, fat and muscle. However, more recent studies suggest that MSCs residing in perivascular compartments of the small and large blood vessels play a regulatory function supporting physiologic and pathologic responses of parenchymal cells, which define the functional representation of an organ or tissue. MSCs secrete or express factors that reach neighbouring parenchymal cells via either a paracrine effect or a direct cell-to-cell interaction promoting functional activity, survival and proliferation of the parenchymal cells. Previous concept of 'epithelial-stromal' interactions can now be widened. Given that MSC can also support hematopoietic, neuronal and other non-epithelial parenchymal lineages, terms 'parenchymal-stromal' or 'parenchymal-mesenchymal' interactions may better describe the supportive or 'trophic' functions of MSC. Importantly, in many cases, MSCs specifically provide supportive microenvironment for the most primitive stem or progenitor populations and therefore can play a role as 'stem/progenitor niche' forming cells. So far, regulatory roles of MSCs have been reported in many tissues. In this review article, we summarize the latest studies that focused on the supportive function of MSC. This thread of research leads to a new perspective on the interactions between parenchymal and mesenchymal cells and justifies a principally novel approach for regenerative medicine based on co-application of MSC and parenchymal cell for the most efficient tissue repair.
Insights
Mesenchymal stem cells (MSCs) support parenchymal cells, acting as crucial regulators in tissue repair. This research highlights their role in regenerative medicine, suggesting combined MSC and parenchymal cell therapies.
Area of Science:
- Cell Biology
- Regenerative Medicine
- Tissue Engineering
Background:
- Mesenchymal stem or stromal cells (MSCs) were initially identified by their differentiation potential.
- Emerging evidence indicates MSCs in perivascular niches regulate parenchymal cell function via paracrine signaling and direct interactions.
- The concept of 'epithelial-stromal' interactions is evolving to 'parenchymal-stromal' or 'parenchymal-mesenchymal' interactions.
Purpose of the Study:
- To review recent studies on the supportive functions of MSCs.
- To explore the role of MSCs in regulating parenchymal cell activity.
- To propose a new perspective on MSCs as 'stem/progenitor niche' forming cells.
Main Methods:
- Literature review of recent studies on MSC supportive functions.
- Analysis of MSC interactions with various parenchymal cell types.
- Synthesis of findings to redefine MSC roles in tissue homeostasis and repair.
Main Results:
- MSCs provide essential trophic support to diverse parenchymal lineages, including hematopoietic and neuronal cells.
- MSCs actively create supportive microenvironments, functioning as 'stem/progenitor niche' formers.
- Regulatory roles of MSCs have been documented across numerous tissues.
Conclusions:
- MSCs play a critical regulatory role beyond their differentiation capacity.
- Understanding 'parenchymal-mesenchymal' interactions opens new avenues for regenerative medicine.
- Co-application of MSCs and parenchymal cells offers a novel strategy for efficient tissue repair.
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