AI Article Synopsis

  • - The bone marrow microenvironment is crucial for regulating haematopoietic stem cell functions, and this study investigates whether different bone areas have unique properties and resilience, especially in the context of aging and inflammation.
  • - Researchers found that the skull's bone marrow grows and becomes more vascularized throughout life, contributing significantly to blood cell production and showing resistance to typical aging effects like inflammation and fat accumulation.
  • - The study highlights that changes in the skull’s bone marrow occur rapidly due to various conditions, including pregnancy and diseases like stroke, indicating that the skull offers a unique and adaptable environment compared to the more commonly studied femur.

Article Abstract

The bone marrow microenvironment is a critical regulator of haematopoietic stem cell self-renewal and fate. Although it is appreciated that ageing, chronic inflammation and other insults compromise bone marrow function and thereby negatively affect haematopoiesis, it is not known whether different bone compartments exhibit distinct microenvironmental properties and functional resilience. Here we use imaging, pharmacological approaches and mouse genetics to uncover specialized properties of bone marrow in adult and ageing skull. Specifically, we show that the skull bone marrow undergoes lifelong expansion involving vascular growth, which results in an increasing contribution to total haematopoietic output. Furthermore, skull is largely protected against major hallmarks of ageing, including upregulation of pro-inflammatory cytokines, adipogenesis and loss of vascular integrity. Conspicuous rapid and dynamic changes to the skull vasculature and bone marrow are induced by physiological alterations, namely pregnancy, but also pathological challenges, such as stroke and experimental chronic myeloid leukaemia. These responses are highly distinct from femur, the most extensively studied bone marrow compartment. We propose that skull harbours a protected and dynamically expanding bone marrow microenvironment, which is relevant for experimental studies and, potentially, for clinical treatments in humans.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11618084PMC
http://dx.doi.org/10.1038/s41586-024-08163-9DOI Listing

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