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Sramek, V.

Publications and source records attributed to Sramek, V..

3 recordsLinked to original sources

Long-term immune changes after COVID-19 and the effect of BCG vaccination and latent infections on disease severity

BackgroundSeveral years after the COVID-19 pandemic, the role of trained immunity in COVID-19 remains controversial, and questions regarding the long-term effects of COVID-19 on immune cells remain unresolved. We investigated the roles of Bacillus Calmette-Guerin (BCG) vaccination and latent infections in the progression of COVID-19 and sepsis. MethodsWe conducted a prospective analysis of 97 individuals recovering from mild-to-critical COVID-19 and 64 sepsis patients. Immune cell frequencies, expression of functional markers, and plasma titres of anti-Toxoplasma gondii/cytomegalovirus/BCG antibodies were assessed and their impact on disease severity and outcomes were determined. To examine monocyte responses to secondary challenge, monocytes isolated from COVID-19 convalescent patients, BCG vaccinated and unvaccinated volunteers were stimulated with SARS-CoV-2 and LPS. ResultsPost COVID-19 patients showed immune dysregulation regardless of disease severity characterized mainly by altered expression of activation and functional markers in myeloid (CD39, CD64, CD85d, CD11b) and lymphoid cells (CD39, CD57, TIGIT). Strikingly, post-critical COVID-19 patients showed elevated expression of CD57 in CD8+ T cells compared to other severity groups. Additionally, a higher frequency of CMV and T. gondii seropositive-alongside a lower frequency of BCG seropositive-patients were associated with severe and critical COVID-19. However, the monocyte response to stimulation was unaffected by the severity of COVID-19. ConclusionThese findings highlight the long-term alterations of immune cells in post-COVID-19 patients emphasizing the substantial impact of COVID-19 on immune function. However, our data showed no relationship between previous BCG vaccination and protection against SARS-CoV-2 infection.

immunology↗

Sepsis induces long-term reprogramming of human HSPCs and drives myeloid dysregulation in sepsis survivors

Sepsis is a life-threatening condition characterised by an overwhelming immune response and high fatality. While most research has focused on its acute phase, many sepsis survivors remain immunologically weakened leaving them susceptible to serious complications from even mild infections. The mechanisms underlying this prolonged immune dysregulation remain unclear, limiting effective interventions. Here, we analysed whether sepsis induced long-term "training" in hematopoietic stem and progenitor cells (HSPCs), imprinting changes that persist in their myeloid progeny. Peripheral blood analysis of 8 sepsis survivors, 12 patients with septic shock, and 10 healthy donors revealed a significant expansion of CD38+ progenitors in survivors, with increases in megakaryocyte-erythroid and granulocyte-monocyte progenitors, and reduced mature neutrophil counts. This shift suggests impaired granulopoiesis, favouring immature, immunosuppressive granulocytes. Differentiated macrophages from survivors HSPCs exhibited impaired metabolic pathways after lipopolysaccharide stimulation, with downregulation of tricarboxylic acid cycle and glycolysis genes, indicating altered immune metabolism. Pathway analysis revealed enhanced type-I interferon (IFN) and JAK-STAT signalling in survivors macrophages, reflective of potentially tolerance-prone reprogramming. Finally, exposing healthy donor HSPCs to IFN{beta} during macrophage differentiation reduced HSPC proliferation, increased apoptosis, and induced a metabolic shift towards glycolysis over mitochondrial respiration. Together, these findings suggest that sepsis induces lasting reprogramming in HSPCs leading to myeloid progeny with altered immune memory that might drive immune dysregulation in survivors. These data open avenues to explore potential targets to better manage long-term immune alterations in sepsis survivors. KEY POINTSO_LISepsis induces long-term alterations in HSPCs, leading to the expansion of immature progenitors and metabolic dysregulation of their progeny. C_LIO_LIType-I IFN signalling reprograms macrophage differentiation, affecting their metabolic function and reducing cell proliferation. C_LI

immunology↗

Development of a protein synthesis network at the sarco/endoplasmic reticulum in adult cardiac myocytes

IntroductionThe endoplasmic reticulum (ER) is the site of synthesis and folding of membrane and secretory proteins, which constitute a large fraction of the total protein output of a mammalian cell. Striated muscle cells contain a specialized membrane system known as the sarcoplasmic reticulum (SR) that controls calcium homeoastasis and contraction, however the biochemical and physiological relationship between the ER and SR and how both compartments participate in protein synthesis remains incompletely understood. MethodsProtein quantification and imaging of selected marker proteins for ER and SR functions was performed to characterize the relationship of the ER and SR and its individual involvement in protein synthesis in neonatal and adult cardiac myocytes. Superresolution microscopy was used to examine the interaction of ribosomes and the SR in adult cardiac myocytes. ResultsQuantification of ER and SR-associated proteins of isolated ventricular cardiac myocytes showed that relative expression of ER/SR resident protein quality elements, as well as relative ribosome levels are decreased in adult cells, whereas SR-associated Ca2+ handling proteins increase. Immunocytoflourescence revealed that the membrane compartment that exists in early postpartum resembles mostly the ER and decreases in postnatal development. The SR is the main membrane network that exists in the adult cardiac myocytes, replacing the ER, in all but the perinuclear region. Immunocytoflourescence staining further indicated that both networks perform overlapping but distinct, specialized functions, such as localization of excitation-contraction coupling exclusively to the SR or initiation of secretion via the classical secretory pathway mainly from the ER. Ribosomes and mRNA were localized both in close proximity to the ER and the SR of adult ventricular cardiac myocytes. Superresolution microscopy confirmed that both the ER as well as the developed SR bind ribosomes and are direct sites of protein synthesis and protein homeostasis in adult cardiac myocytes. ConclusionOur findings suggest molecular differentiation and structural organization of the ER/SR in cardiac muscle development, resulting in the development of a protein synthesis network at the sarco/endoplasmic reticulum in adult cardiac myocytes.

cell biology↗