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Impaired Hematopoietic Stem/Progenitor Cell Traffic and Multi-organ Damage in Diabetes
Gian Paolo Fadini1,2, Mattia Albiero1,2
1Department of Medicine, University of Padova, Padua, Italy.
Insights
Diabetes mellitus impairs hematopoietic stem/progenitor cell (HSPC) traffic, leading to reduced circulating HSPCs and contributing to multi-organ damage. This "mobilopathy" involves complex interactions affecting immunity and hematopoiesis.
Area of Science:
- Hematology
- Endocrinology
- Immunology
Background:
- Hematopoietic stem/progenitor cells (HSPCs) originate in specialized endothelium and migrate during development.
- Adult HSPCs exhibit migratory activity, trafficking to various tissues and contributing to homeostasis.
- Diabetes mellitus is known to disrupt normal HSPC trafficking, a condition termed 'mobilopathy'.
Purpose of the Study:
- To summarize current evidence on how diabetes mellitus affects HSPC traffic.
- To elucidate the causes and consequences of altered HSPC traffic in diabetes.
- To understand the contribution of HSPC dysregulation to the overall disease burden of diabetes.
Main Methods:
- Review of existing scientific literature and evidence.
- Analysis of the interplay between metabolism, innate immunity, and hematopoiesis in diabetes.
- Correlation of HSPC mobilopathy with diabetes-induced myelopoiesis and inflammation.
Main Results:
- Diabetes mellitus significantly jeopardizes HSPC traffic from bone marrow to circulation and peripheral tissues.
- Reduced circulating HSPC levels in diabetes are linked to increased risk of micro- and macro-angiopathy.
- Mobilopathy in diabetes results from a complex interplay of metabolic, immune, and hematopoietic factors.
Conclusions:
- Impaired HSPC traffic and enhanced pro-inflammatory cell generation in diabetes synergize to cause tissue damage.
- Diabetes-induced alterations in HSPC traffic contribute significantly to the pathology and complications of the disease.
- Understanding HSPC mobilopathy is crucial for addressing the multi-organ damage associated with diabetes mellitus.
Abstract:
During antenatal development, hematopoietic stem/progenitor cells (HSPCs) arise from a specialized endothelium and migrate from the extraembryonic mesoderm to the fetal liver before establishing hematopoiesis in the bone marrow (BM). It is still debated whether, in adulthood, HSPCs display such ontologic overlap with vascular cells and capacity for endothelial differentiation. Yet, adult HSPCs retain a prominent migratory activity and traffic in the bloodstream to secondary lymphoid organs and all peripheral tissues, before eventually returning to the BM. While patrolling parenchymatous organs, HSPCs locate close to the vasculature, where they establish local hematopoietic islands and contribute to tissue homeostasis by paracrine signals. Solid evidence shows that diabetes mellitus jeopardizes the traffic of HSPCs from BM to the circulation and peripheral tissues, a condition called "mobilopathy." A reduction in the levels of circulating HSPCs is the most immediate and apparent consequence, which has been consistently observed in human diabetes, and is strongly associated with future risk for multi-organ damage, including micro- and macro-angiopathy. But the shortage of HSPCs in the blood is only the visible tip of the iceberg. Abnormal HSPC traffic results from a complex interplay among metabolism, innate immunity, and hematopoiesis. Notably, mobilopathy is mechanistically connected with diabetes-induced myelopoiesis. Impaired traffic of HSPCs and enhanced generation of pro-inflammatory cells synergize for tissue damage and impair the resolution of inflammation. We herein summarize the current evidence that diabetes affects HSPC traffic, which are the causes and consequences of such alteration, and how it contributes to the overall disease burden.
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