Active Cells, Biochemistry & Physiology Genetics & Molecular Biology

Understanding age-related immune dysfunction using human model systems

In plain English

AI plain-English summary

The bone marrow's specialised niches that support lifelong blood and immune cell production break down with age, and a new set of human lab models aims to reveal exactly how that happens. Most research on ageing bone marrow has used mice, but mouse and human bone marrow niches differ significantly. This project builds three human model systems: an organoid that mimics the aged bone marrow environment, a micro-fluidic platform to study how ageing blood vessels disrupt blood cell formation, and a co-culture system linking bone marrow and thymus organoids to track how altered blood production reshapes the immune system's training ground. The researcher, a bioengineer, will collaborate with clinicians and fundamental scientists to fill this gap. If successful, these models could reveal why older people produce fewer functional immune cells and more inflammatory ones—a shift that drives higher rates of severe infection, cardiovascular disease, and cancer. The work is primarily fundamental science: it aims to understand a basic biological process. But better human models of ageing tissues could eventually help researchers test strategies to slow immune decline without relying on animal studies, and may inform therapies that restore healthy blood cell production in older adults.

View original technical description
The bone marrow sustains lifelong blood and immune cell production. As we age, disruptions to the specialized niches that support healthy haematopoiesis drive immunosenescence and inflammation—major risk factors for cardiovascular disease, cancer, and severe infection. While cell-intrinsic causes of haematopoietic aging are well studied, the role of altered cellular crosstalk in aged micro-environments remains poorly understood. Fundamentally, this is due to the limitations of mouse models in the context of human bone marrow niches, as well as the lack of physiologically relevant human models. This research will (1) investigate how age-related changes in stromal cell differentiation alter myeloid and lymphoid output using a human organoid model of the aged bone marrow niche, (2) examine how vascular aging contributes to haematopoietic dysfunction in a micro-fluidic platform, and (3) define the impact of altered haematopoiesis on thymic remodelling in a co-culture model of thymus and bone marrow organoids. I will build on my skills as a bioengineer and bring together fundamental scientists and clinicians to provide insights into aging niches and their effects on haematopoiesis. My aim is to generate much needed human models of complex tissues to advance basic and translational research, and inform strategies for mitigating immune decline.

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Researchers

Abdullah Khan (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Cellular and molecular dynamics of healthy ageing in the human Haematopoietic Stem Cell compartment
Modelling the human bone marrow microenvironment
Mechanisms of reduced T cell imunity in older adults
Counteracting hematopoietic ageing by pharmacological inhibition of TGFbeta and IL-6 signaling
Engineering the bone marrow niche to control stem cell regulation, metastatic evolution and cancer dormancy

Original classification

Career Development Award

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