DECONVOLUTION OF CLONAL HEMATOPOIESIS ASSOCIATED INFLAMMATION IN HEALTH AND DISEASE
DECONVOLUTION OF CLONAL HEMATOPOIESIS ASSOCIATED INFLAMMATION IN HEALTH AND DISEASE
Clonal hematopoiesis (CH), including clonal hematopoiesis of indeterminate potential (CHIP), is an age-associated condition characterized by the expansion of hematopoietic stem and progenitor cell clones carrying acquired somatic mutations. Although CH is associated with an increased risk of hematologic malignancies, its greater public health impact derives from its strong association with cardiovascular diseases, including coronary artery disease and stroke. Emerging evidence suggests that CH-associated mutations promote chronic inflammatory signaling in myeloid immune cells, thereby contributing to atherosclerosis and adverse cardiovascular remodeling.
This observational translational study aims to characterize the biological spectrum of clonal hematopoiesis across different stages of disease risk and manifestation. Using state-of-the-art single-cell and multi-omics approaches, the study will compare inflammatory pathways, immune cell states, and mutation-associated molecular programs among healthy individuals without CH, individuals with high-risk CH, and patients with CH-associated hematologic or cardiovascular disease. The ultimate goal is to identify shared and disease-specific mechanisms linking clonal hematopoiesis to adverse clinical outcomes and to generate insights for future preventive, anti-clonal, and anti-inflammatory therapeutic strategies.
Inclusion Criteria: Participants must be ≥18 years of age and meet at least one of the following criteria:
Group A: Control Group (n=20)
Exclusion Criteria:
kai.zimmer@i-med.ac.at+43 512 504 83895
Background and Rationale:
Clonal hematopoiesis (CH), including clonal hematopoiesis of indeterminate potential (CHIP), arises from acquired somatic mutations in hematopoietic stem and progenitor cells that accumulate throughout life and drive clonal expansion. The most frequently affected genes include DNMT3A, TET2, and ASXL1. While such mutations are also involved in the pathogenesis of hematologic malignancies such as myelodysplastic syndromes (MDS) and acute myeloid leukemia (AML), progression to overt hematologic cancer occurs only in a minority of affected individuals.
In contrast, epidemiological studies have consistently demonstrated a strong association between clonal hematopoiesis and cardiovascular disease. Individuals carrying CHIP-associated mutations have a substantially increased risk of coronary artery disease, myocardial infarction, stroke, and cardiovascular mortality. The magnitude of risk conferred by CHIP has been reported to be comparable to established cardiovascular risk factors such as smoking or hypertension.
Experimental and mechanistic studies suggest that CH-associated mutations remodel immune-cell function through epigenetic reprogramming and activation of inflammatory pathways, including the NLRP3 inflammasome and cGAS-STING signaling. These alterations enhance the proliferation, activation, and inflammatory potential of myeloid immune cells, resulting in chronic sterile inflammation that can promote atherosclerosis, vascular injury, and adverse cardiac remodeling.
Importantly, clonal hematopoiesis is not considered a disease entity itself but rather a common biological state and independent risk factor for a range of age-related disorders. Since clonal hematopoiesis develops in varying degrees in a substantial proportion of the aging population, understanding its biological consequences represents a major opportunity for disease prevention.
Additional support for a causal role of inflammation comes from retrospective analyses of the CANTOS trial, which suggested that individuals carrying somatic TET2 mutations derived particularly strong benefit from anti-inflammatory treatment targeting interleukin-1β. These findings highlight the potential for precision prevention and targeted therapeutic interventions in CH-associated disease. However, a more comprehensive understanding of the cellular and molecular mechanisms linking clonal hematopoiesis to disease development is required for improved risk stratification and the development of novel therapeutic approaches.
Study Objectives:
The primary objective of this study is to define the inflammatory and immunological landscape across the biological continuum of clonal hematopoiesis, from healthy individuals without detectable CH to individuals with high-risk CH and patients with CH-associated hematologic or cardiovascular disease.
Specific objectives include:
Study Design:
This is a prospective observational translational research study.
A total of six participant groups will be recruited, with approximately 20 participants per group (total n ≈ 120). The groups will represent different stages along the spectrum of clonal hematopoiesis and disease manifestation, including:
Study Procedures:
Participants will provide peripheral whole-blood samples for comprehensive molecular, cellular, and functional analyses. Planned investigations include:
Expected Impact:
The study is designed to establish a comprehensive map of inflammatory and immune mechanisms associated with clonal hematopoiesis across its natural history. By defining the biological pathways that connect somatic mutations to hematologic and cardiovascular disease, the project aims to support the development of improved risk stratification tools and enable future preventive, anti-clonal, and anti-inflammatory therapeutic strategies. Ultimately, these efforts may contribute to preventing or delaying progression from healthy aging through clonal hematopoiesis to clinically manifest hematologic and cardiovascular disease.
tina.pancheri@vascage.at+4351255443513
dominik.wolf@i-med.ac.at+43 50504 24003