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Updated: May 30, 2025

Bioengineering of Humanized Bone Marrow Microenvironments in Mouse and Their Visualization by Live Imaging
Published on: August 1, 2017
Bone Marrow Niche in Cardiometabolic Disease: Mechanisms and Therapeutic Potential
Zachary A Kohutek1, Heather L Caslin2, Daniel J Fehrenbach3
1Department of Radiation Oncology (Z.A.K.), Vanderbilt University Medical Center, Nashville, TN.
Insights
Chronic inflammation drives cardiometabolic diseases. The bone marrow niche, crucial for immune regulation, becomes dysregulated, promoting inflammation and disease progression. Targeting this niche offers new therapeutic avenues.
Area of Science:
- Immunology
- Cardiovascular Medicine
- Hematology
Background:
- Cardiovascular and cardiometabolic diseases are leading global causes of death, significantly influenced by chronic inflammation.
- The bone marrow microenvironment (marrow niche) is vital for immune regulation and hematopoietic stem cell (HSC) maintenance.
- Inflammatory conditions associated with cardiometabolic diseases disrupt the marrow niche, leading to immune dysregulation and disease exacerbation.
Purpose of the Study:
- To review the intricate relationship between the bone marrow niche and cardiometabolic diseases.
- To elucidate how alterations in the marrow niche contribute to the development and progression of these conditions.
- To explore therapeutic strategies targeting the bone marrow niche for managing chronic inflammation and cardiovascular risk.
Main Methods:
- Literature review focusing on the reciprocal interactions between the bone marrow niche and cardiometabolic diseases.
- Analysis of mechanisms by which inflammation, hyperlipidemia, hyperglycemia, and sympathetic activation impact HSCs within the niche.
- Examination of epigenetic modifications and metabolic reprogramming leading to trained immunity in HSCs.
Main Results:
- The bone marrow niche, essential for immune homeostasis, becomes dysregulated in chronic inflammatory diseases.
- Inflammatory signals disrupt HSC balance, promoting excessive production of pro-inflammatory myeloid cells that worsen cardiometabolic conditions.
- Mechanisms include hyperlipidemia, hyperglycemia, sympathetic activation, epigenetic changes, and metabolic reprogramming, leading to trained immunity.
Conclusions:
- The bone marrow niche plays a critical role in the pathogenesis of cardiometabolic diseases through chronic inflammation and immune dysregulation.
- Targeting the bone marrow niche to restore homeostasis and modulate hematopoiesis presents a promising therapeutic strategy.
- Interventions aimed at interrupting the inflammation-marrow dysregulation cycle could significantly reduce cardiovascular risk and improve patient outcomes.
Abstract:
Cardiovascular and cardiometabolic diseases are leading causes of morbidity and mortality worldwide, driven in part by chronic inflammation. Emerging research suggests that the bone marrow microenvironment, or marrow niche, plays a critical role in both immune system regulation and disease progression. The bone marrow niche is essential for maintaining hematopoietic stem cells (HSCs) and orchestrating hematopoiesis. Under normal conditions, this niche ensures a return to immune homeostasis after acute stress. However, in the setting of inflammatory conditions such as those seen in cardiometabolic diseases, it becomes dysregulated, leading to enhanced myelopoiesis and immune activation. This review explores the reciprocal relationship between the bone marrow niche and cardiometabolic diseases, highlighting how alterations in the niche contribute to disease development and progression. The niche regulates HSCs through complex interactions with stromal cells, endothelial cells, and signaling molecules. However, in the setting of chronic diseases such as hypertension, atherosclerosis, and diabetes, inflammatory signals disrupt the balance between HSC self-renewal and differentiation, promoting the excessive production of proinflammatory myeloid cells that exacerbate the disease. Key mechanisms discussed include the effects of hyperlipidemia, hyperglycemia, and sympathetic nervous system activation on HSC proliferation and differentiation. Furthermore, the review emphasizes the role of epigenetic modifications and metabolic reprogramming in creating trained immunity, a phenomenon whereby HSCs acquire long-term proinflammatory characteristics that sustain disease states. Finally, we explore therapeutic strategies aimed at targeting the bone marrow niche to mitigate chronic inflammation and its sequelae. Novel interventions that modulate hematopoiesis and restore niche homeostasis hold promise for the treatment of cardiometabolic diseases. By interrupting the vicious cycle of inflammation and marrow dysregulation, such therapies may offer new avenues for reducing cardiovascular risk and improving patient outcomes.
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