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Rug, M.

Publications and source records attributed to Rug, M..

3 recordsLinked to original sources

Structure, dynamics and evolution of the Candida albicans multi-drug resistance ABC transporter CDR1

The pleiotropic drug resistance transporter Cdr1 from Candida albicans plays a crucial role in antifungal resistance. Here, we present high-resolution cryo-electron microscopy structures of C. albicans Cdr1 in multiple functional states: nucleotide-bound, substrate-bound, and apo forms. The 3.5 [A] resolution structure of Cdr1 in complex with ATP and ADP reveals the molecular details of its asymmetric nucleotide-binding sites (NBS), with ATP bound to the deviant NBS1 and ADP to the canonical NBS2. Structures of Cdr1 bound to rhodamine 6G (3.4 [A]) and Oregon Green 488 (3.5 [A]) in complex with these nucleotides elucidate the pleiotropic substrate-binding pocket and highlight how nucleotide exchange drives conformational change required for transport. Additionally, we determined a 3.7 [A] resolution structure of Cdr1 in the detergent LMNG without nucleotides, as well as a 3.5 [A] resolution structure with nucleotides but no substrate, representing an apo state. We complemented these structural insights with molecular dynamics simulations to understand substrate binding dynamics, ancestral sequence reconstruction to trace the evolution of key functional motifs, and analysis of clinical isolates from sequence databases to identify potential resistance-associated variations. Comparison of these structures provides new insights into the conformational changes associated with the transport cycle of this asymmetric ABC transporter, revealing how ATP binding at the deviant NBS1 allosterically regulates the canonical NBS2, driving ATPase activity. This work significantly advances our understanding of the molecular mechanisms underlying multidrug resistance in pathogenic fungi and provides a structural and evolutionary framework for the rational design of Cdr1 inhibitors to combat antifungal resistance.

microbiology↗

B cells targeting parasites capture spatially linked antigens to secure T cell help

Our understanding of T-cell-dependent humoral responses has been largely shaped by studies involving model antigens such as recombinant proteins and viruses 1,2. In these contexts, B cells internalize the entire antigen or pathogen, and present a range of antigens to helper CD4+ T cells to initiate the humoral response. However, this model does not account for large pathogens (such as parasites) that are too large to be taken up by individual B cells, and the mechanisms by which B cells acquire and present antigens from large complex pathogens to T cells remain poorly understood. Here we used Plasmodium, the causative parasite of malaria, as a model to investigate the requirements for T cell help for B cells targeting the Plasmodium surface circumsporozoite protein (CSP). Upon Plasmodium sporozoite (SPZ) immunization, CSP-specific B cells can form a synapse-like structure with SPZs and take up CSP and non-CSP surface antigens. As a result, CSP-specific B cells can receive help from CD4+ T cells specific to antigens that are located on the surface but not cytosol of the Plasmodium SPZ. Therefore, B cells can obtain help, not only from T cells with the same protein specificity, but also from T cells specific for spatially linked antigens. This flexibility in T cell help may enhance the initiation and maintenance of humoral immune responses to complex pathogens.

immunology↗

A member of the tryptophan-rich protein family is required for efficient sequestration of Plasmodium berghei schizonts

Protein export and host membrane remodeling are crucial for multiple Plasmodium species to establish a niche in infected hosts. To better understand the contribution of these processes to successful parasite infection in vivo, we sought to find and characterize protein components of the intraerythrocytic Plasmodium berghei-induced membrane structures (IBIS) that form in the cytoplasm of infected erythrocytes. We identified proteins that immunoprecipitate with IBIS1, a signature member of the IBIS in P. berghei-infected erythrocytes. In parallel, we also report our data describing proteins that co-precipitate with the PTEX (Plasmodium translocon of exported proteins) component EXP2. To validate our findings, we examined the location of three candidate IBIS1-interactors that are conserved across multiple Plasmodium species, and we found they localized to IBIS in infected red blood cells and two further co-localized with IBIS1 in the liver-stage parasitophorous vacuole membrane. Successful gene deletion revealed that these two tryptophan-rich domain-containing proteins, termed here IPIS2 and IPIS3 (for intraerythrocytic Plasmodium-induced membrane structures), are required for efficient blood-stage growth. Erythrocytes infected with IPIS2-deficient schizonts in particular fail to bind CD36 as efficiently as wild-type P. berghei-infected cells and therefore fail to effectively sequester out of the circulating blood. Our findings support the idea that intra-erythrocytic membrane compartments are required across species for alterations of the host erythrocyte that facilitate interactions of infected cells with host tissues. Author SummaryRed blood cells, which are typically devoid of organelles or other intracellular membrane compartments, are host to Plasmodium parasites in a malaria infection. These intracellular parasites export proteins into the host red blood cell cytoplasm and generate novel membranous organelles therein. The best characterized of these membrane structures are known as Maurers clefts in Plasmodium falciparum-infected cells; however, infection with any studied Plasmodium species leads to the generation of membrane structures in the host red blood cell. For these other Plasmodium species, the known protein repertoire of these cleft-like structures is extremely limited. Our study expands upon this repertoire in the rodent parasite Plasmodium berghei. We genetically targeted two of the proteins we identified in these cleft-like structures and found both are required for efficient Plasmodium growth in the hosts blood. One of these, which we term IPIS2, is required for the binding of late-stage Plasmodium-infected red blood cells to the vascular endothelium to sequester out of the circulating blood. Both proteins have a tryptophan-rich domain, and this is the first time a protein with this domain has been found to affect the remodeling of the host red blood cell during Plasmodium infection.

microbiology↗