Senescence of mesenchymal stem cells (Review)

Yi Li1, Qiong Wu1, Yujia Wang1

  • 1Laboratory of Pathology, West China Hospital, Sichuan University, Chengdu, Sichuan 610041, P.R. China.

Insights

Mesenchymal stem cells (MSCs) lose function with age (senescence), but the mechanisms are unclear. Understanding MSC aging is vital for cell therapy and developing interventions for age-related decline.

Area of Science:

  • Gerontology
  • Cell Biology
  • Regenerative Medicine

Background:

  • Mesenchymal stem cells (MSCs) possess immunomodulatory and anti-inflammatory properties beneficial for cell-based therapies.
  • MSC function declines with age due to senescence, a process poorly understood at the molecular level.
  • Heterogeneity of senescent MSCs and unknown regulatory genes/pathways hinder therapeutic applications.

Purpose of the Study:

  • To elucidate the mechanisms underlying Mesenchymal stem cell senescence.
  • To identify key factors and pathways regulating MSC aging.
  • To provide a comprehensive overview of MSC senescence for clinical applications and therapeutic development.

Main Methods:

  • Review of recent scientific literature on Mesenchymal stem cell senescence.
  • Analysis of studies focusing on markers, differentiation potential, and influencing factors.
  • Emphasis on oxidative stress, telomere shortening, epigenetic modifications, and signaling pathways.

Main Results:

  • Senescent MSCs exhibit heterogeneity in phenotypic markers, complicating their identification.
  • Factors such as oxidative stress, telomere shortening, and epigenetic changes (histone deacetylase, DNA methyltransferase) influence MSC senescence.
  • Specific genes and signaling pathways governing MSC aging remain largely unknown.

Conclusions:

  • A deeper understanding of Mesenchymal stem cell senescence mechanisms is crucial for effective cell-based therapies.
  • Identifying drivers of MSC aging can lead to interventions to slow or reverse age-related dysfunction.
  • Knowledge of MSC aging is essential for enhancing tissue repair and maintaining healthy function in aging populations.

Related Concept Videos

Mesenchymal Stem Cells01:19

Mesenchymal Stem Cells

Mesenchymal stem cells (MSCs) are adult stem cells that can differentiate into most connective tissue cell types, except for hematopoietic cells, depending upon the source of MSCs. For example, bone-marrow-derived MSCs (BM-MSCs) can differentiate into osteocytes, hepatocytes, and pancreatic and neuronal cells. MSCs can be isolated from various sources such as bone marrow, placenta, adipose tissue, teeth, and Wharton’s jelly, a gelatinous substance in the umbilical cord. The ease of their...
5.7K
Multipotency of Hematopoietic Stem Cells01:19

Multipotency of Hematopoietic Stem Cells

The hematopoietic stem cells or HSCs are multipotent, meaning they can differentiate and give rise to all blood and immune cells. HSCs are maintained in the quiescent stage until an external stimulus initiates their differentiation. The multipotent HSCs exist as two heterogeneous populations, long-term repopulating cells (LTRC) and short-term repopulating cells (STRC). The two HSC populations have different surface markers or receptors and are classified based on quiescence and long-term...
4.0K
Adult Stem Cells01:33

Adult Stem Cells

Stem cells are undifferentiated cells that divide and produce more stem cells or progenitor cells that differentiate into mature, specialized cell types. All the cells in the body are generated from stem cells in the early embryo, but small populations of stem cells are also present in many adult tissues including the bone marrow, brain, skin, and gut. These adult stem cells typically produce the various cell types found in that tissue—to replace cells that are damaged or to continuously...
34.0K
Stem Cell Niche01:26

Stem Cell Niche

The stem cell niche is the dynamic microenvironment where stem cells reside. Inside these niches, the cells may remain undifferentiated, undergo high self-renewal, or become lineage-specific progenitors. Stem cells coexist with other niche cells, such as stromal cells. They also interact closely with the ECM. Cell-cell and cell-matrix communication occur via adhesion molecules or soluble factors that signal the stem cells and determine their fate. Stromal cells also provide survival signals to...
6.5K
Stem Cell Therapy for Tissue Regeneration01:21

Stem Cell Therapy for Tissue Regeneration

Stem cell therapy is a method used in regenerative medicine to repair and restore function to damaged tissues and organs. Stem cells have the potential to proliferate and differentiate into various tissue types, making them ideal candidates for tissue regeneration. For example, hematopoietic stem cell transplants are commonly used in blood cancer treatment to replenish damaged bone marrow and restore healthy blood cells.
Types of Stem Cells used in Stem Cell Therapy
The two main cell...
4.8K
Maintenance of the ES Cell State01:14

Maintenance of the ES Cell State

The cells of the blastocyst inner cell mass only remain pluripotent for a short time. This state of pluripotency and self-renewal can be maintained in embryonic stem (ES) cell culture by adding specific chemicals or growth factors to ensure the cells can continue dividing and later differentiate into different cell types. In some cases, the cells are grown on a feeder layer of differentiated cells, which provides the growth factors and extracellular matrix components necessary for stem cell...
2.8K