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1.
Annu Rev Microbiol ; 76: 113-134, 2022 09 08.
Article in English | MEDLINE | ID: mdl-35609946

ABSTRACT

The malaria parasite life cycle alternates between two hosts: a vertebrate and the female Anopheles mosquito vector. Cell division, proliferation, and invasion are essential for parasite development, transmission, and survival. Most research has focused on Plasmodium development in the vertebrate, which causes disease; however, knowledge of malaria parasite development in the mosquito (the sexual and transmission stages) is now rapidly accumulating, gathered largely through investigation of the rodent malaria model, with Plasmodium berghei. In this review, we discuss the seminal genome-wide screens that have uncovered key regulators of cell proliferation, invasion, and transmission during Plasmodium sexual development. Our focus is on the roles of transcription factors, reversible protein phosphorylation, and molecular motors. We also emphasize the still-unanswered important questions around key pathways in cell division during the vector transmission stages and how they may be targeted in future studies.


Subject(s)
Anopheles , Malaria , Parasites , Animals , Anopheles/parasitology , Female , Malaria/parasitology , Mosquito Vectors , Plasmodium berghei/genetics
2.
J Cell Sci ; 136(11)2023 06 01.
Article in English | MEDLINE | ID: mdl-37288670

ABSTRACT

Flagella are important for eukaryote cell motility, including in sperm, and are vital for life cycle progression of many unicellular eukaryotic pathogens. The '9+2' axoneme in most motile flagella comprises nine outer doublet and two central-pair singlet microtubules. T-shaped radial spokes protrude from the outer doublets towards the central pair and are necessary for effective beating. We asked whether there were radial spoke adaptations associated with parasite lineage-specific properties in apicomplexans and trypanosomatids. Following an orthologue search for experimentally uncharacterised radial spoke proteins (RSPs), we identified and analysed RSP9. Trypanosoma brucei and Leishmania mexicana have an extensive RSP complement, including two divergent RSP9 orthologues, necessary for flagellar beating and swimming. Detailed structural analysis showed that neither orthologue is needed for axoneme assembly in Leishmania. In contrast, Plasmodium has a reduced set of RSPs including a single RSP9 orthologue, deletion of which in Plasmodium berghei leads to failure of axoneme formation, failed male gamete release, greatly reduced fertilisation and inefficient life cycle progression in the mosquito. This indicates contrasting selection pressures on axoneme complexity, likely linked to the different mode of assembly of trypanosomatid versus Plasmodium flagella.


Subject(s)
Parasites , Plasmodium , Male , Animals , Axoneme/metabolism , Parasites/metabolism , Microtubules/metabolism , Seeds , Proteins/metabolism , Flagella/metabolism , Eukaryota/metabolism , Plasmodium/metabolism , Dyneins/metabolism
3.
PLoS Biol ; 20(7): e3001704, 2022 07.
Article in English | MEDLINE | ID: mdl-35900985

ABSTRACT

Kinesins are microtubule (MT)-based motors important in cell division, motility, polarity, and intracellular transport in many eukaryotes. However, they are poorly studied in the divergent eukaryotic pathogens Plasmodium spp., the causative agents of malaria, which manifest atypical aspects of cell division and plasticity of morphology throughout the life cycle in both mammalian and mosquito hosts. Here, we describe a genome-wide screen of Plasmodium kinesins, revealing diverse subcellular locations and functions in spindle assembly, axoneme formation, and cell morphology. Surprisingly, only kinesin-13 is essential for growth in the mammalian host while the other 8 kinesins are required during the proliferative and invasive stages of parasite transmission through the mosquito vector. In-depth analyses of kinesin-13 and kinesin-20 revealed functions in MT dynamics during apical cell polarity formation, spindle assembly, and axoneme biogenesis. These findings help us to understand the importance of MT motors and may be exploited to discover new therapeutic interventions against malaria.


Subject(s)
Culicidae , Malaria , Parasites , Plasmodium , Animals , Humans , Kinesins/genetics , Life Cycle Stages/genetics , Malaria/metabolism , Mammals , Microtubules/metabolism , Plasmodium/genetics
4.
PLoS Pathog ; 18(7): e1010666, 2022 07.
Article in English | MEDLINE | ID: mdl-35816515

ABSTRACT

The apical complex of apicomplexan parasites is essential for host cell invasion and intracellular survival and as the site of regulated exocytosis from specialised secretory organelles called rhoptries and micronemes. Despite its importance, there are few data on the three-dimensional organisation and quantification of these organelles within the apical complex or how they are trafficked to this specialised region of plasma membrane for exocytosis. In coccidian apicomplexans there is an additional tubulin-containing hollow barrel structure, the conoid, which provides a structural gateway for this specialised apical secretion. Using a combination of cellular electron tomography and serial block face-scanning electron microscopy (SBF-SEM) we have reconstructed the entire apical end of Eimeria tenella sporozoites; we report a detailed dissection of the three- dimensional organisation of the conoid and show there is high curvature of the tubulin-containing fibres that might be linked to the unusual comma-shaped arrangement of protofilaments. We quantified the number and location of rhoptries and micronemes within cells and show a highly organised gateway for trafficking and docking of rhoptries, micronemes and microtubule-associated vesicles within the conoid around a set of intra-conoidal microtubules. Finally, we provide ultrastructural evidence for fusion of rhoptries directly through the parasite plasma membrane early in infection and the presence of a pore in the parasitophorous vacuole membrane, providing a structural explanation for how rhoptry proteins may be trafficked between the parasite and the host cytoplasm.


Subject(s)
Eimeria tenella , Parasites , Animals , Eimeria tenella/metabolism , Eimeria tenella/ultrastructure , Electron Microscope Tomography , Organelles/metabolism , Parasites/metabolism , Protozoan Proteins/metabolism , Tubulin/metabolism
5.
PLoS Biol ; 19(3): e3001081, 2021 03.
Article in English | MEDLINE | ID: mdl-33705380

ABSTRACT

The apical complex is the instrument of invasion used by apicomplexan parasites, and the conoid is a conspicuous feature of this apparatus found throughout this phylum. The conoid, however, is believed to be heavily reduced or missing from Plasmodium species and other members of the class Aconoidasida. Relatively few conoid proteins have previously been identified, making it difficult to address how conserved this feature is throughout the phylum, and whether it is genuinely missing from some major groups. Moreover, parasites such as Plasmodium species cycle through 3 invasive forms, and there is the possibility of differential presence of the conoid between these stages. We have applied spatial proteomics and high-resolution microscopy to develop a more complete molecular inventory and understanding of the organisation of conoid-associated proteins in the model apicomplexan Toxoplasma gondii. These data revealed molecular conservation of all conoid substructures throughout Apicomplexa, including Plasmodium, and even in allied Myzozoa such as Chromera and dinoflagellates. We reporter-tagged and observed the expression and location of several conoid complex proteins in the malaria model P. berghei and revealed equivalent structures in all of its zoite forms, as well as evidence of molecular differentiation between blood-stage merozoites and the ookinetes and sporozoites of the mosquito vector. Collectively, we show that the conoid is a conserved apicomplexan element at the heart of the invasion mechanisms of these highly successful and often devastating parasites.


Subject(s)
Apicomplexa/metabolism , Plasmodium/metabolism , Biological Evolution , Cytoskeleton/metabolism , Evolution, Molecular , Malaria/parasitology , Mosquito Vectors/metabolism , Plasmodium/pathogenicity , Protozoan Proteins/metabolism , Toxoplasma/metabolism , Toxoplasma/pathogenicity
6.
Glycoconj J ; 40(2): 213-223, 2023 04.
Article in English | MEDLINE | ID: mdl-36738392

ABSTRACT

Sialoadhesin (CD169/Siglec-1, Sn) is a macrophage receptor that interacts with sialic acids on both host cells and pathogens. It is a type 1 membrane protein with an unusually large number of 17 extracellular immunoglobulin (Ig)-like domains, made up of an N-terminal V-set domain that binds sialic acid and 16 adjacent C2-set domains. The potential importance of 17 Ig domains in Sn for mediating cellular interactions has not been investigated experimentally. In the present study, Chinese Hamster Ovary (CHO) cells were stably transfected with full-length or truncated forms of Sn. Using human red blood cells (RBC) as a model system, CHO cells expressing truncated forms of Sn with 4 or less Ig domains were unable to bind RBC in comparison to the full-length protein. Immunoelectron microscopy of the CHO cells indicated that full-length Sn extends ~ 33 nm from the plasma membrane compared with ~ 14 nm for a truncated form with 6 N-terminal Ig domains. Co-expresssion of Sn-expressing CHO cells with heavily glycosylated membrane proteins of differing predicted lengths resulted in selective modulation of Sn-dependent binding to RBC and supported the hypothesis that Sn has evolved 17 Ig domains to escape inhibitory cis-interactions. The functional significance of the extended length of Sn was demonstrated in experiments with macrophages showing that Sn synergizes with phagocytic receptors FcR and TIM-4 to strongly promote uptake of IgG-opsonized and eryptotic RBC respectively.


Subject(s)
Macrophages , Sialic Acid Binding Ig-like Lectin 1 , Animals , Cricetinae , Humans , CHO Cells , Cricetulus , Macrophages/metabolism , Phagocytosis , Sialic Acid Binding Ig-like Lectin 1/metabolism
7.
J Cell Sci ; 134(5)2020 06 30.
Article in English | MEDLINE | ID: mdl-32501284

ABSTRACT

Eukaryotic cell proliferation requires chromosome replication and precise segregation to ensure daughter cells have identical genomic copies. Species of the genus Plasmodium, the causative agents of malaria, display remarkable aspects of nuclear division throughout their life cycle to meet some peculiar and unique challenges to DNA replication and chromosome segregation. The parasite undergoes atypical endomitosis and endoreduplication with an intact nuclear membrane and intranuclear mitotic spindle. To understand these diverse modes of Plasmodium cell division, we have studied the behaviour and composition of the outer kinetochore NDC80 complex, a key part of the mitotic apparatus that attaches the centromere of chromosomes to microtubules of the mitotic spindle. Using NDC80-GFP live-cell imaging in Plasmodium berghei, we observe dynamic spatiotemporal changes during proliferation, including highly unusual kinetochore arrangements during sexual stages. We identify a very divergent candidate for the SPC24 subunit of the NDC80 complex, previously thought to be missing in Plasmodium, which completes a canonical, albeit unusual, NDC80 complex structure. Altogether, our studies reveal the kinetochore to be an ideal tool to investigate the non-canonical modes of chromosome segregation and cell division in Plasmodium.


Subject(s)
Parasites , Plasmodium , Animals , Cell Division , Chromosome Segregation/genetics , Kinetochores , Microtubules , Mitosis/genetics , Plasmodium/genetics , Spindle Apparatus/genetics
8.
Vet Pathol ; 59(5): 873-882, 2022 09.
Article in English | MEDLINE | ID: mdl-35400234

ABSTRACT

Plasmodium falciparum remains one of the world's deadliest diseases and with ongoing concerns of evolving drug resistance, there is a need for continued refinement of the Plasmodium coatneyi infection model in macaques to study severe malaria. As such, the systemic ultrastructural lesions associated with P. coatneyi infection in splenectomized rhesus macaques was evaluated in 6 animals. Autopsy samples from multiple areas of the central nervous system (CNS), kidneys, heart, liver, and lungs of all 6 animals were processed for electron microscopy. A systematic analysis of the ultrastructural changes associated with the plasmodium was undertaken by multiple pathologists to ensure consensus. All tissues exhibited marked sequestration of infected red blood cells comprised either of cytoadherence to endothelium or rosette formation, associated with variable degrees of host cell damage in a range of tissues that in severe cases resulted in necrosis. This is the first complete systemic evaluation of ultrastructural tissue lesions in P. coatneyi-infected rhesus macaques, and the findings have important implications evaluating of the use of this model for the study of severe malaria caused by P. falciparum in humans.


Subject(s)
Malaria , Plasmodium , Animals , Erythrocytes/pathology , Erythrocytes/ultrastructure , Humans , Macaca mulatta , Malaria/complications , Malaria/veterinary , Microscopy, Electron/veterinary
9.
PLoS Pathog ; 15(10): e1008048, 2019 10.
Article in English | MEDLINE | ID: mdl-31600347

ABSTRACT

Kinesin-8 proteins are microtubule motors that are often involved in regulation of mitotic spindle length and chromosome alignment. They move towards the plus ends of spindle microtubules and regulate the dynamics of these ends due, at least in some species, to their microtubule depolymerization activity. Plasmodium spp. exhibit an atypical endomitotic cell division in which chromosome condensation and spindle dynamics in the different proliferative stages are not well understood. Genome-wide shared orthology analysis of Plasmodium spp. revealed the presence of two kinesin-8 motor proteins, kinesin-8X and kinesin-8B. Here we studied the biochemical properties of kinesin-8X and its role in parasite proliferation. In vitro, kinesin-8X has motility and depolymerization activities like other kinesin-8 motors. To understand the role of Plasmodium kinesin-8X in cell division, we used fluorescence-tagging and live cell imaging to define its location, and gene targeting to analyse its function, during all proliferative stages of the rodent malaria parasite P. berghei life cycle. The results revealed a spatio-temporal involvement of kinesin-8X in spindle dynamics and an association with both mitotic and meiotic spindles and the putative microtubule organising centre (MTOC). Deletion of the kinesin-8X gene revealed a defect in oocyst development, confirmed by ultrastructural studies, suggesting that this protein is required for oocyst development and sporogony. Transcriptome analysis of Δkinesin-8X gametocytes revealed modulated expression of genes involved mainly in microtubule-based processes, chromosome organisation and the regulation of gene expression, supporting a role for kinesin-8X in cell division. Kinesin-8X is thus required for parasite proliferation within the mosquito and for transmission to the vertebrate host.


Subject(s)
Kinesins/metabolism , Malaria/parasitology , Malaria/transmission , Oocysts/cytology , Plasmodium/physiology , Protozoan Proteins/metabolism , Spindle Apparatus/physiology , Animals , Chromosome Segregation , Female , Kinesins/genetics , Male , Mice, Inbred BALB C , Microtubules/metabolism , Mitosis , Oocysts/physiology , Protozoan Proteins/genetics
10.
Haematologica ; 106(11): 2960-2970, 2021 11 01.
Article in English | MEDLINE | ID: mdl-33121234

ABSTRACT

The investigation of inherited disorders of erythropoiesis has elucidated many of the principles underlying the production of normal red blood cells and how this is perturbed in human disease. Congenital Dyserythropoietic Anaemia type 1 (CDA-I) is a rare form of anaemia caused by mutations in two genes of unknown function: CDAN1 and CDIN1 (previously called C15orf41), whilst in some cases, the underlying genetic abnormality is completely unknown. Consequently, the pathways affected in CDA-I remain to be discovered. To enable detailed analysis of this rare disorder we have validated a culture system which recapitulates all of the cardinal haematological features of CDA-I, including the formation of the pathognomonic 'spongy' heterochromatin seen by electron microscopy. Using a variety of cell and molecular biological approaches we discovered that erythroid cells in this condition show a delay during terminal erythroid differentiation, associated with increased proliferation and widespread changes in chromatin accessibility. We also show that the proteins encoded by CDAN1 and CDIN1 are enriched in nucleoli which are structurally and functionally abnormal in CDA-I. Together these findings provide important pointers to the pathways affected in CDA-I which for the first time can now be pursued in the tractable culture system utilised here.


Subject(s)
Anemia, Dyserythropoietic, Congenital , Anemia, Dyserythropoietic, Congenital/diagnosis , Anemia, Dyserythropoietic, Congenital/genetics , Erythroid Cells , Erythropoiesis , Glycoproteins/genetics , Humans , Nuclear Proteins/genetics
11.
Am J Hum Genet ; 99(6): 1292-1304, 2016 Dec 01.
Article in English | MEDLINE | ID: mdl-27866708

ABSTRACT

Uncombable hair syndrome (UHS), also known as "spun glass hair syndrome," "pili trianguli et canaliculi," or "cheveux incoiffables" is a rare anomaly of the hair shaft that occurs in children and improves with age. UHS is characterized by dry, frizzy, spangly, and often fair hair that is resistant to being combed flat. Until now, both simplex and familial UHS-affected case subjects with autosomal-dominant as well as -recessive inheritance have been reported. However, none of these case subjects were linked to a molecular genetic cause. Here, we report the identification of UHS-causative mutations located in the three genes PADI3 (peptidylarginine deiminase 3), TGM3 (transglutaminase 3), and TCHH (trichohyalin) in a total of 11 children. All of these individuals carry homozygous or compound heterozygous mutations in one of these three genes, indicating an autosomal-recessive inheritance pattern in the majority of UHS case subjects. The two enzymes PADI3 and TGM3, responsible for posttranslational protein modifications, and their target structural protein TCHH are all involved in hair shaft formation. Elucidation of the molecular outcomes of the disease-causing mutations by cell culture experiments and tridimensional protein models demonstrated clear differences in the structural organization and activity of mutant and wild-type proteins. Scanning electron microscopy observations revealed morphological alterations in hair coat of Padi3 knockout mice. All together, these findings elucidate the molecular genetic causes of UHS and shed light on its pathophysiology and hair physiology in general.


Subject(s)
Antigens/genetics , Hair Diseases/genetics , Hair/growth & development , Hydrolases/genetics , Intermediate Filament Proteins/genetics , Mutation , Transglutaminases/genetics , Adolescent , Animals , Base Sequence , Cell Line , Codon, Nonsense , Female , Hair/abnormalities , Hair/anatomy & histology , Hair/metabolism , Humans , Hydrolases/deficiency , Hydrolases/metabolism , Male , Mice , Mice, Knockout , Models, Molecular , Mutation, Missense/genetics , Protein Conformation , Protein-Arginine Deiminase Type 3 , Protein-Arginine Deiminases , Transglutaminases/deficiency , Transglutaminases/metabolism , Vibrissae/abnormalities
12.
Traffic ; 17(2): 102-16, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26566590

ABSTRACT

Upon infection, apicomplexan parasites quickly invade host cells and begin a replicative cycle rapidly increasing in number over a short period of time, leading to tissue lysis and disease. The secretory pathway of these highly polarized protozoan parasites tightly controls, in time and space, the biogenesis of specialized structures and organelles required for invasion and intracellular survival. In other systems, regulation of protein trafficking can occur by phosphorylation of vesicle fusion machinery. Previously, we have shown that Toxoplasma gondii αSNAP - a protein that controls the disassembly of cis-SNARE complexes--is phosphorylated. Here, we show that this post-translational modification is required for the correct function of αSNAP in controlling secretory traffic. We demonstrate that during intracellular development conditional expression of a non-phosphorylatable form of αSNAP results in Golgi fragmentation and vesiculation of all downstream secretory organelles. In addition, we show that the vestigial plastid (termed apicoplast), although reported not to be reliant on Golgi trafficking for biogenesis, is also affected upon overexpression of αSNAP and is much more sensitive to the levels of this protein than targeting to other organelles. This work highlights the importance of αSNAP and its phosphorylation in Toxoplasma organelle biogenesis and exposes a hereto fore-unexplored mechanism of regulation of vesicle fusion during secretory pathway trafficking in apicomplexan parasites.


Subject(s)
Organelles/metabolism , Phosphorylation/physiology , Protein Processing, Post-Translational/physiology , Secretory Pathway/physiology , Soluble N-Ethylmaleimide-Sensitive Factor Attachment Proteins/metabolism , Toxoplasma/metabolism , Golgi Apparatus/physiology , Organelle Biogenesis , Organelles/physiology , Protein Transport/physiology , Protozoan Proteins/metabolism , Toxoplasma/physiology
13.
J Physiol ; 2018 Jun 19.
Article in English | MEDLINE | ID: mdl-29917232

ABSTRACT

KEY POINTS: The carotid body is a peripheral arterial chemoreceptor that regulates ventilation in response to both acute and sustained hypoxia. Type I cells in this organ respond to low oxygen both acutely by depolarization and dense core vesicle secretion and, over the longer term, via cellular proliferation and enhanced ventilatory responses. Using lineage analysis, the present study shows that the Type I cell lineage itself proliferates and expands in response to sustained hypoxia. Inactivation of HIF-2α in Type I cells impairs the ventilatory, proliferative and cell intrinsic (dense core vesicle) responses to hypoxia. Inactivation of PHD2 in Type I cells induces multilineage hyperplasia and ultrastructural changes in dense core vesicles to form paraganglioma-like carotid bodies. These changes, similar to those observed in hypoxia, are dependent on HIF-2α. Taken together, these findings demonstrate a key role for the PHD2-HIF-2α couple in Type I cells with respect to the oxygen sensing functions of the carotid body. ABSTRACT: The carotid body is a peripheral chemoreceptor that plays a central role in mammalian oxygen homeostasis. In response to sustained hypoxia, it manifests a rapid cellular proliferation and an associated increase in responsiveness to hypoxia. Understanding the cellular and molecular mechanisms underlying these processes is of interest both to specialized chemoreceptive functions of that organ and, potentially, to the general physiology and pathophysiology of cellular hypoxia. We have combined cell lineage tracing technology and conditionally inactivated alleles in recombinant mice to examine the role of components of the HIF hydroxylase pathway in specific cell types within the carotid body. We show that exposure to sustained hypoxia (10% oxygen) drives rapid expansion of the Type I, tyrosine hydroxylase expressing cell lineage, with little transdifferentiation to (or from) that lineage. Inactivation of a specific HIF isoform, HIF-2α, in the Type I cells was associated with a greatly reduced proliferation of Type I cells and hypoxic ventilatory responses, with ultrastructural evidence of an abnormality in the action of hypoxia on dense core secretory vesicles. We also show that inactivation of the principal HIF prolyl hydroxylase PHD2 within the Type I cell lineage is sufficient to cause multilineage expansion of the carotid body, with characteristics resembling paragangliomas. These morphological changes were dependent on the integrity of HIF-2α. These findings implicate specific components of the HIF hydroxylase pathway (PHD2 and HIF-2α) within Type I cells of the carotid body with respect to the oxygen sensing and adaptive functions of that organ.

14.
PLoS Pathog ; 12(2): e1005403, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26845335

ABSTRACT

The inner membrane complex (IMC) of apicomplexan parasites is a specialised structure localised beneath the parasite's plasma membrane, and is important for parasite stability and intracellular replication. Furthermore, it serves as an anchor for the myosin A motor complex, termed the glideosome. While the role of this protein complex in parasite motility and host cell invasion has been well described, additional roles during the asexual life cycle are unknown. Here, we demonstrate that core elements of the glideosome, the gliding associated proteins GAP40 and GAP50 as well as members of the GAPM family, have critical roles in the biogenesis of the IMC during intracellular replication. Deletion or disruption of these genes resulted in the rapid collapse of developing parasites after initiation of the cell cycle and led to redistribution of other glideosome components.


Subject(s)
Cell Membrane/metabolism , Cytoplasmic Vesicles/metabolism , Membrane Proteins/metabolism , Organelle Biogenesis , Protozoan Proteins/metabolism , Toxoplasma/physiology , Biomarkers/metabolism , Cell Line , Cell Membrane/ultrastructure , Cytoplasmic Vesicles/ultrastructure , Gene Knockout Techniques , Humans , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Membrane Proteins/genetics , Microscopy, Electron, Transmission , Microscopy, Video , Organelle Size , Organisms, Genetically Modified , Protein Isoforms/genetics , Protein Isoforms/metabolism , Protein Transport , Protozoan Proteins/genetics , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Reproduction, Asexual , Toxoplasma/growth & development , Toxoplasma/ultrastructure
15.
Invest New Drugs ; 36(5): 773-781, 2018 10.
Article in English | MEDLINE | ID: mdl-29387992

ABSTRACT

Effective cytoprotectors that are selective for normal tissues could decrease radiotherapy and chemotherapy sequelae and facilitate the safe administration of higher radiation doses. This could improve the cure rates of radiotherapy for cancer patients. Autophagy is a cytoplasmic cellular process that is necessary for the clearance of damaged or aged proteins and organelles. It is a strong determinant of post-irradiation cell fate. In this study, we investigated the effect of the mTOR-independent small molecule enhancer of autophagy (SMER28) on mouse liver autophagy and post-irradiation recovery of mouse bone marrow and liver. SMER28 enhanced the autophagy flux and improved the survival of normal hepatocytes. This effect was specific for normal cells because SMER28 had no protective effect on hepatoma or other cancer cell line survival in vitro. In vivo subcutaneous administration of SMER28 protected mouse liver and bone marrow against radiation damage and facilitated survival of mice after lethal whole body or abdominal irradiation. These findings open a new field of research on autophagy-targeting radioprotectors with clinical applications in oncology, occupational, and space medicine.


Subject(s)
Allyl Compounds/pharmacology , Autophagy/drug effects , Bone Marrow/drug effects , Liver/drug effects , Quinazolines/pharmacology , Radiation-Protective Agents/pharmacology , Animals , Autophagy/radiation effects , Bone Marrow/radiation effects , Cell Line , Humans , Liver/radiation effects , Male , Mice, Inbred BALB C , Neoplasms/radiotherapy , TOR Serine-Threonine Kinases , Whole-Body Irradiation
16.
Proc Natl Acad Sci U S A ; 112(9): E973-81, 2015 Mar 03.
Article in English | MEDLINE | ID: mdl-25691752

ABSTRACT

Desmosomes are anchoring junctions that exist in cells that endure physical stress such as cardiac myocytes. The importance of desmosomes in maintaining the homeostasis of the myocardium is underscored by frequent mutations of desmosome components found in human patients and animal models. Arrhythmogenic right ventricular cardiomyopathy (ARVC) is a phenotype caused by mutations in desmosomal components in ∼ 50% of patients, however, the causes in the remaining 50% of patients still remain unknown. A deficiency of inhibitor of apoptosis-stimulating protein of p53 (iASPP), an evolutionarily conserved inhibitor of p53, caused by spontaneous mutation recently has been associated with a lethal autosomal recessive cardiomyopathy in Poll Hereford calves and Wa3 mice. However, the molecular mechanisms that mediate this putative function of iASPP are completely unknown. Here, we show that iASPP is expressed at intercalated discs in human and mouse postmitotic cardiomyocytes. iASPP interacts with desmoplakin and desmin in cardiomyocytes to maintain the integrity of desmosomes and intermediate filament networks in vitro and in vivo. iASPP deficiency specifically induces right ventricular dilatation in mouse embryos at embryonic day 16.5. iASPP-deficient mice with exon 8 deletion (Ppp1r13l(Δ8/Δ8)) die of sudden cardiac death, displaying features of ARVC. Intercalated discs in cardiomyocytes from four of six human ARVC cases show reduced or loss of iASPP. ARVC-derived desmoplakin mutants DSP-1-V30M and DSP-1-S299R exhibit weaker binding to iASPP. These data demonstrate that by interacting with desmoplakin and desmin, iASPP is an important regulator of desmosomal function both in vitro and in vivo. This newly identified property of iASPP may provide new molecular insight into the pathogenesis of ARVC.


Subject(s)
Arrhythmias, Cardiac , Cardiomyopathy, Hypertrophic, Familial , Death, Sudden , Desmosomes , Intracellular Signaling Peptides and Proteins , Repressor Proteins , Amino Acid Substitution , Animals , Arrhythmias, Cardiac/genetics , Arrhythmias, Cardiac/metabolism , Arrhythmias, Cardiac/pathology , Base Sequence , Cardiomyopathy, Hypertrophic, Familial/genetics , Cardiomyopathy, Hypertrophic, Familial/metabolism , Cardiomyopathy, Hypertrophic, Familial/pathology , Cattle , Cell Line, Transformed , Desmin/genetics , Desmin/metabolism , Desmoplakins/genetics , Desmoplakins/metabolism , Desmosomes/genetics , Desmosomes/metabolism , Desmosomes/pathology , Disease Models, Animal , Female , Humans , Intermediate Filaments , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Male , Mice , Mutation, Missense , Repressor Proteins/genetics , Repressor Proteins/metabolism , Sequence Deletion
17.
PLoS Pathog ; 11(11): e1005273, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26565797

ABSTRACT

Cell-cycle progression and cell division in eukaryotes are governed in part by the cyclin family and their regulation of cyclin-dependent kinases (CDKs). Cyclins are very well characterised in model systems such as yeast and human cells, but surprisingly little is known about their number and role in Plasmodium, the unicellular protozoan parasite that causes malaria. Malaria parasite cell division and proliferation differs from that of many eukaryotes. During its life cycle it undergoes two types of mitosis: endomitosis in asexual stages and an extremely rapid mitotic process during male gametogenesis. Both schizogony (producing merozoites) in host liver and red blood cells, and sporogony (producing sporozoites) in the mosquito vector, are endomitotic with repeated nuclear replication, without chromosome condensation, before cell division. The role of specific cyclins during Plasmodium cell proliferation was unknown. We show here that the Plasmodium genome contains only three cyclin genes, representing an unusual repertoire of cyclin classes. Expression and reverse genetic analyses of the single Plant (P)-type cyclin, CYC3, in the rodent malaria parasite, Plasmodium berghei, revealed a cytoplasmic and nuclear location of the GFP-tagged protein throughout the lifecycle. Deletion of cyc3 resulted in defects in size, number and growth of oocysts, with abnormalities in budding and sporozoite formation. Furthermore, global transcript analysis of the cyc3-deleted and wild type parasites at gametocyte and ookinete stages identified differentially expressed genes required for signalling, invasion and oocyst development. Collectively these data suggest that cyc3 modulates oocyst endomitotic development in Plasmodium berghei.


Subject(s)
Cell Division/physiology , Cyclins/metabolism , Malaria/parasitology , Plasmodium berghei/metabolism , Protozoan Proteins/metabolism , Animals , Culicidae , Cyclins/genetics , Female , Humans , Mice , Oocysts , Protozoan Proteins/genetics , Sporozoites/growth & development
18.
Proc Natl Acad Sci U S A ; 111(17): 6437-42, 2014 Apr 29.
Article in English | MEDLINE | ID: mdl-24733931

ABSTRACT

Unlike most intracellular pathogens that gain access into host cells through endocytic pathways, Toxoplasma gondii initiates infection at the cell surface by active penetration through a moving junction and subsequent formation of a parasitophorous vacuole. Here, we describe a noncanonical pathway for T. gondii infection of macrophages, in which parasites are initially internalized through phagocytosis, and then actively invade from within a phagosomal compartment to form a parasitophorous vacuole. This phagosome to vacuole invasion (PTVI) pathway may represent an intermediary link between the endocytic and the penetrative routes for host cell entry by intracellular pathogens. The PTVI pathway is preferentially used by avirulent strains of T. gondii and confers an infectious advantage over virulent strains for macrophage tropism.


Subject(s)
Macrophages/parasitology , Phagosomes/parasitology , Toxoplasma/pathogenicity , Animals , Cell Line , Macrophages/pathology , Macrophages/ultrastructure , Mice , Mice, Inbred C57BL , Phagocytosis , Phagosomes/pathology , Phagosomes/ultrastructure , Toxoplasma/ultrastructure , Toxoplasmosis/parasitology , Toxoplasmosis/pathology , Tropism , Vacuoles/parasitology , Vacuoles/pathology , Vacuoles/ultrastructure
19.
J Biol Chem ; 290(43): 25907-19, 2015 10 23.
Article in English | MEDLINE | ID: mdl-26370078

ABSTRACT

We have reported previously that a missense mutation in the mitochondrial fission gene Dynamin-related protein 1 (Drp1) underlies the Python mouse model of monogenic dilated cardiomyopathy. The aim of this study was to investigate the consequences of the C452F mutation on Drp1 protein function and to define the cellular sequelae leading to heart failure in the Python monogenic dilated cardiomyopathy model. We found that the C452F mutation increased Drp1 GTPase activity. The mutation also conferred resistance to oligomer disassembly by guanine nucleotides and high ionic strength solutions. In a mouse embryonic fibroblast model, Drp1 C452F cells exhibited abnormal mitochondrial morphology and defective mitophagy. Mitochondria in C452F mouse embryonic fibroblasts were depolarized and had reduced calcium uptake with impaired ATP production by oxidative phosphorylation. In the Python heart, we found a corresponding progressive decline in oxidative phosphorylation with age and activation of sterile inflammation. As a corollary, enhancing autophagy by exposure to a prolonged low-protein diet improved cardiac function in Python mice. In conclusion, failure of Drp1 disassembly impairs mitophagy, leading to a downstream cascade of mitochondrial depolarization, aberrant calcium handling, impaired ATP synthesis, and activation of sterile myocardial inflammation, resulting in heart failure.


Subject(s)
Biopolymers/physiology , Dynamins/physiology , Heart Failure/etiology , Mitophagy , Myocarditis/etiology , Animals , Biopolymers/genetics , Biopolymers/metabolism , Cells, Cultured , Dynamins/genetics , Dynamins/metabolism , Heart Failure/physiopathology , Mice , Mutation , Myocarditis/physiopathology , Oxidative Phosphorylation
20.
Br J Haematol ; 175(2): 318-330, 2016 Oct.
Article in English | MEDLINE | ID: mdl-27432187

ABSTRACT

Accurate diagnosis of rare inherited anaemias is challenging, requiring a series of complex and expensive laboratory tests. Targeted next-generation-sequencing (NGS) has been used to investigate these disorders, but the selection of genes on individual panels has been narrow and the validation strategies used have fallen short of the standards required for clinical use. Clinical-grade validation of negative results requires the test to distinguish between lack of adequate sequencing reads at the locations of known mutations and a real absence of mutations. To achieve a clinically-reliable diagnostic test and minimize false-negative results we developed an open-source tool (CoverMi) to accurately determine base-coverage and the 'discoverability' of known mutations for every sample. We validated our 33-gene panel using Sanger sequencing and microarray. Our panel demonstrated 100% specificity and 99·7% sensitivity. We then analysed 57 clinical samples: molecular diagnoses were made in 22/57 (38·6%), corresponding to 32 mutations of which 16 were new. In all cases, accurate molecular diagnosis had a positive impact on clinical management. Using a validated NGS-based platform for routine molecular diagnosis of previously undiagnosed congenital anaemias is feasible in a clinical diagnostic setting, improves precise diagnosis and enhances management and counselling of the patient and their family.


Subject(s)
Anemia/diagnosis , Anemia/genetics , Genetic Predisposition to Disease , Genetic Testing , Computational Biology/methods , Disease Management , Genetic Association Studies , Genetic Testing/methods , Genetic Testing/standards , High-Throughput Nucleotide Sequencing , Humans , Infant , Male , Mutation , Polymorphism, Single Nucleotide , Rare Diseases , Reproducibility of Results , Workflow
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