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Dzikowski, R.

Publications and source records attributed to Dzikowski, R..

4 recordsLinked to original sources

Nano-scale Architecture of Blood-Brain Barrier Tight-Junctions

Tight junctions (TJs) between blood-brain barrier (BBB) endothelial cells construct a robust physical barrier, whose damage underlies BBB dysfunctions related to several neurodegenerative diseases. What makes these highly specialized BBB-TJs extremely restrictive remains unknown. Here, we use super-resolution microscopy (dSTORM) to uncover new structural and functional properties of BBB TJs. Focusing on three major components, Nano-scale resolution revealed sparse (occludin) vs. clustered (ZO1/claudin-5) molecular architecture. Developmentally, permeable TJs become first restrictive to large molecules, and only later to small molecules, with claudin-5 proteins arrangement compacting during this maturation process. Mechanistically, we reveal that ZO1 clustering is independent of claudin-5 in-vivo. In contrast to accepted knowledge, we found that in the developmental context, total levels of claudin-5 inversely correlate with TJ functionality. Our super-resolution studies provide a unique perspective of BBB TJs and open new directions for understanding TJ functionality in biological barriers, ultimately enabling restoration in disease or modulation for drug delivery.

cell biology

Neutrophils impose strong selective pressure against PfEMP1 variants implicated in cerebral malaria

Plasmodium falciparum, the deadliest form of human malaria, remains one of the major threats to human health in endemic regions. Its virulence is attributed to its ability to modify infected red blood cells (iRBC) to adhere to endothelial receptors by placing variable antigens known as PfEMP1 on the surface of the red cell. PfEMP1 expression on the red cell surface determines the cytoadhesive properties of the iRBCs and is implicated in severe manifestations of malaria. To evade antibody mediated responses the parasite undergoes continuous switches of expression between different PfEMP1 variants. Recently it became clear that in addition to antibody mediated responses, PfEMP1 triggers an innate immune response, however, the role of neutrophils, the most abundant white blood cells in the human circulation, in malaria remains elusive. Here we show that neutrophils recognize and kill blood stages of several P. falciparum isolates, and we identify neutrophil ICAM-1 and specific PfEMP1s implicated in cerebral malaria as the key molecules involved in this killing. Our data provide mechanistic insight into the interactions between neutrophils and iRBCs and demonstrate the important influence of PfEMP1 on the selective innate response to cerebral malaria.

microbiology

An SR protein is essential for the recovery of malaria parasites from DNA damage and exposure to artemisinin

Plasmodium falciparum, the parasite responsible for the deadliest form of human malaria, maintains a complex life cycle with a relatively small number of genes. PfSR1 is an alternative splicing factor that regulates expansion of the P. falciparum protein repertoire. To further investigate PfSR1 functions, we set to unveil its interactome. We found that PfSR1 interacts with proteins, which are linked to various processes of RNA metabolism in a stage-dependent manner. These include: chromatin re-modeling, transcription, splicing and translation. Intriguingly, some of the PfSR1 interacting proteins are orthologues of proteins implicated in the DNA damage response. We demonstrate that PfSR1 expression is important for preventing the accumulation of DNA damage in proliferating parasites. In addition, following parasites exposure to a source of DNA damage, PfSR1 is recruited to damaged foci where it interacts with the phosphorylated core histone PfH2A, which marks damaged chromatin. Furthermore, PfSR1 expression was found to be essential for the ability of the parasite to activate the DNA repair machinery and recover from DNA damage caused by either irradiation or exposure to artemisinin, the first line anti-malarial drug. These findings unveil a novel role of PfSR1 in protecting P. falciparum from DNA damage and artemisinin exposure.

microbiology

Phosphorylation of the canonical histone H2A marks foci of damaged DNA in malaria parasite

Plasmodium falciparum parasites proliferate within circulating red blood cells and are responsible for the deadliest form of human malaria. These parasites are exposed to numerous intrinsic and external sources that could cause DNA damage, therefore, they have evolved efficient mechanisms to protect their genome integrity and allow them to proliferate in such conditions. In higher eukaryotes, double strand breaks rapidly lead to phosphorylation of the core histone variant H2A.X which marks the site of damaged DNA. We show that in P. falciparum that lacks the H2A.X variant, the canonical PfH2A is phosphorylated on serine 121 upon exposure to sources of DNA damage in a dose dependent manner. We further demonstrate that phosphorylated PfH2A is recruited to foci of damaged chromatin shortly after exposure to sources of damage, while the non-phosphorylated PfH2A remains spread throughout the nucleoplasm. In addition, we found that PfH2A phosphorylation is dynamic and as the parasite repairs its DNA over time, this phosphorylation is removed. We also demonstrate that these phosphorylation dynamics could be used to establish a novel and direct DNA repair assay in P. falciparum. ImportancePlasmodium falciparum is the deadliest human parasite that causes malaria when it reaches the blood stream and begins proliferating inside red blood cells where the parasites are particularly prone to DNA damage. The molecular mechanisms that allow these pathogens to maintain their genome integrity under such condition are also the driving force for acquiring genome plasticity that enable them to create antigenic variation and become resistant to essentially all available drugs. However, mechanisms of DNA damage response and repair have not been extensively studied in these parasites. The paper addresses our recent discovery, that P. falciparum that lacks the histone variant H2A.X, phosphorylates its canonical core histone PfH2A in response to exposure to DNA damage. The process of DNA repair in Plasmodium was mostly studied indirectly. Our findings enabled us to establish a direct DNA repair assay for P. falciparum similar to assays that are widely used in model organisms.

microbiology