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Biology subjects

Salama, A. D.

Publications and source records attributed to Salama, A. D..

3 recordsLinked to original sources

Optimised haemoglobin depletion improves clinical proteomics from dried blood spots

Equitable access to large sample cohorts for robust, high-throughput proteomics for biomarker discovery is a major barrier to widescale clinical implementation. Dried blood spots (DBS) offer a minimally invasive alternative to venous blood draws, enabling at-home microsampling (<50 {micro}L) for centralised analysis, thus enhancing research participation. This approach is particularly relevant for under-represented groups, including children, the elderly, minority backgrounds and those with long-term health conditions such as chronic kidney disease (CKD), where disease fluctuations may occur outside the clinic, and vein preservation is critical. Proteomic analysis has demonstrated great utility in monitoring disease progression, and for biomarker/therapeutic target discovery. However, liquid chromatography-tandem mass spectrometry (LC-MS/MS) of whole blood is hindered by the wide dynamic range and the relatively high abundance of proteins such as haemoglobin, compromising biomarker discovery. Here, we establish an optimised workflow for protein extraction and haemoglobin depletion from microsamples obtained using DBS, enabling sensitive and high-throughput proteomic analysis. We demonstrate that haemoglobin depletion increases protein identifications by [~]50%, mitigating ion suppression and dynamic range effects, enabling the identification of putative biomarkers from patients with stage 5 CKD on dialysis. We also evaluated a commercial cell-free DBS device which yielded a sample more representative of plasma compared to traditional DBS and enabled greater depletion of haemoglobin compared to traditional DBS with haemoglobin depletion methods. Our findings offer a scalable approach for biomarker discovery, facilitating remote, longitudinal clinical studies.

biochemistry↗

Neutrophils impair B cell differentiation via mitochondrial and lipid metabolism in lupus.

Systemic lupus erythematosus (SLE) is characterised by aberrant neutrophil activation and pathogenic B-cell responses that drive organ damage, particularly in lupus nephritis (LN). Here, we identify neutrophil-derived mitochondrial DNA (mtDNA) as a metabolic driver of B-cell dysregulation in LN. Using single-cell transcriptomics of human blood and kidney tissue together with functional co-culture assays, we show that neutrophils from patients with active LN release extracellular traps enriched in mtDNA that induce mitochondrial oxidative stress in B cells. NET-derived mtDNA suppresses IL-10-producing regulatory B cells while promoting pro-inflammatory and plasmablast differentiation through nucleic acid-dependent signalling. Mechanistically, oxidative stress drives maladaptive NADPH utilisation, diverting NADPH from cholesterol biosynthesis toward antioxidant defence, resulting in altered lipid trafficking, mitochondrial dysfunction, and impaired regulatory B-cell differentiation. Consistent with this model, kidney B cells from patients with LN exhibit transcriptional signatures of disrupted redox and lipid metabolism, and NADPH deficiency is associated with reduced regulatory B-cell differentiation in humans. These findings identify a neutrophil-driven metabolic checkpoint that governs B-cell fate in lupus nephritis.

immunology↗

Vincristine treatment reverses podocyte damage in focal segmental glomerulosclerosis

IntroductionFocal segmental glomerulosclerosis (FSGS) is a significant cause of chronic kidney disease and triggered by podocyte damage which can result in cytoskeletal alterations leading to foot process effacement. Vincristine is a chemoprotective drug which alters cytoskeletal microtubules and has been used clinically to reverse FSGS. However, the mechanisms underlying the beneficial effect of vincristine are not understood. MethodsWe exposed immortalised human podocytes to serum obtained from an FSGS patient before, during, and after vincristine treatment. Using RNA-sequencing we determined the effect on the podocyte transcriptome alongside impacts on cytoskeletal structure and filtration barrier integrity using a glomerulus-on-a-chip model. ResultsWe describe an adult index FSGS patient successfully treated on multiple occasions by vincristine. Podocytes exposed to serum obtained during or after vincristine treatment contained lower levels of genes associated with microtubule function compared with cells stimulated with serum collected before treatment during disease presentation. Presentation serum altered the patterning of two key podocyte cytoskeletal components, tubulin and F-actin and increased albumin permeability, changes prevented by vincristine treatment. Immunoglobulin depletion experiments revealed that the podocyte damage initiated by the presentation serum was not due to circulating autoantibodies. Defects in tubulin patterning were observed when podocytes were exposed to serum from other FSGS patients, suggestive of a common disease mechanism. ConclusionVincristine therapy produces a milieu that protects against pathological changes induced by FSGS serum, associated with preservation of tubulin and F-actin organisation. The functional role of vincristine warrants further investigation, to advance our understanding of this alternative FSGS therapeutic.

cell biology↗