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Chadjichristos, C. E.

Publications and source records attributed to Chadjichristos, C. E..

2 recordsLinked to original sources

Tissue macrophages stem sepsis induced altered organ repair

IntroductionSepsis, the most severe manifestation of infection, remains both common and life-threatening. Beyond the acute phase, growing evidence highlights that sepsis survivors face an increased risk of chronic organ dysfunction, including kidney and heart failure. While early immune mechanisms of sepsis have been extensively studied, the biological processes underlying delayed post-sepsis organ sequelae remain poorly understood. MethodsUsing murine models of sepsis, we investigated the long-term impact of sepsis on organ immune landscapes and tissue repair. Fate-mapping experiments were conducted to trace macrophage origin and persistence. Single-cell RNA sequencing of the heart and kidney was performed to characterize macrophage subpopulations and transcriptional reprogramming following sepsis. Functional consequences of this immune remodeling were assessed by challenging post-septic animals with angiotensin II to evaluate secondary injury susceptibility and fibrotic remodeling. ResultsSepsis induced transient multiorgan failure but led to a sustained expansion of tissue macrophages. Fate-mapping demonstrated that this expansion was largely driven by the recruitment and engraftment of monocyte-derived macrophages. Single-cell transcriptomic analyses revealed that post-septic macrophages acquired a distinct proinflammatory and profibrotic signature, consistent with persistent microenvironmental activation. Functionally, this altered macrophage landscape impaired organ resilience, as evidenced by increased mortality and exacerbated cardiac and renal fibrosis upon secondary challenge. DiscussionOur findings identify macrophage reprogramming as a central mechanism linking sepsis to long-term organ vulnerability. The persistence of monocyte-derived macrophages with maladaptive transcriptional profiles promotes fibrotic remodeling and impaired tissue repair. Targeting macrophage recruitment or reprogramming may represent a promising strategy to prevent chronic organ failure among sepsis survivors. SIGNIFICANCE STATEMENTSepsis survivors often develop chronic organ dysfunction, yet the mechanisms linking acute infection to long-term damage remain unclear. We show that sepsis triggers expansion of inflammatory and profibrotic macrophages derived from bone marrow precursors in the kidney and heart. These alterations were associated with impaired organ resilience to subsequent injury, which suggest macrophage-driven maladaptive repair as a potential target to improve long-term outcomes after sepsis.

immunology↗

A super-resolution compatible workflow for highly multiplexed immunofluorescence of routinely processed kidney tissue

Deep insights into the complex cellular and molecular changes occurring during different (patho-)physiological conditions are essential for understanding the interactions and regulation of different proteins. This understanding is crucial for both research and diagnostics. However, the effectiveness of conventional immunofluorescence, an effective tool for visualizing the spatial distribution of cells or proteins, is limited in complex tissues. This is mainly due to challenges such as the spectral overlap of fluorophore wavelengths, a limited range of antibody types, and the inherent variability of samples. Multiplex immunofluorescence imaging offers a solution to these limitations by enabling precise localization of proteins and identification of different cell types in a single tissue sample. In this study, we demonstrate the cyclic staining and de-staining of paraffin kidney sections, making it suitable for routine use and compatible with super-resolution microscopy for podocyte ultrastructural studies. We have further developed a computerized workflow for data processing which is accessible to all researchers through commercially available reagents and open-access image analysis codes. As a proof of principle, we identified CDH2 as a marker for cellular lesions of sclerotic glomeruli in the nephrotoxic serum nephritis mouse model and cross-validated this finding with a human Nephroseq dataset indicating its translatability. In summary, our work represents a significant advance in multiplex imaging, which is crucial for understanding the localization of numerous proteins in a single FFPE kidney section and the compatibility with super-resolution microscopy to study ultrastructural changes of podocytes.

cell biology↗