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Alvaro Acosta-Serrano

Bio: Alvaro Acosta-Serrano is an academic researcher from Liverpool School of Tropical Medicine. The author has contributed to research in topics: Trypanosoma brucei & Procyclin. The author has an hindex of 33, co-authored 85 publications receiving 3118 citations. Previous affiliations of Alvaro Acosta-Serrano include University of Dundee & Johns Hopkins University School of Medicine.


Papers
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Journal ArticleDOI
Junichi Watanabe1, Masahira Hattori1, Matthew Berriman2, Michael J. Lehane3, Neil Hall4, Neil Hall5, Philippe Solano6, Serap Aksoy7, Winston Hide8, Winston Hide9, Yeya T. Touré10, Geoffrey M. Attardo7, Alistair C. Darby4, Atsushi Toyoda11, Christiane Hertz-Fowler2, Denis M. Larkin12, James Cotton2, Mandy Sanders2, Martin T. Swain12, Michael A. Quail2, Noboru Inoue13, Sophie Ravel6, Todd D. Taylor, Tulika P. Srivastava14, Vineet K. Sharma15, Wesley C. Warren16, Richard K. Wilson16, Yutaka Suzuki1, Daniel Lawson, Daniel S.T. Hughes, Karyn Megy, Daniel K. Masiga17, Paul O. Mireji18, Immo A. Hansen19, Jan Van Den Abbeele20, Joshua B. Benoit21, Joshua B. Benoit7, Kostas Bourtzis22, Kostas Bourtzis23, Kostas Bourtzis24, George F. Obiero17, George F. Obiero9, Hugh M. Robertson25, Jeffery W. Jones26, Jing-Jiang Zhou27, Linda M. Field27, Markus Friedrich26, Steven G. Nyanjom28, Erich Loza Telleria7, Guy Caljon20, José M. C. Ribeiro29, Alvaro Acosta-Serrano3, Cher-Pheng Ooi3, Clair Rose3, David P. Price19, Lee R. Haines3, Alan Christoffels9, Cheolho Sim30, Daphne Q.-D. Pham31, David L. Denlinger32, Dawn L. Geiser33, Irene Omedo34, Joy J. Winzerling33, Justin T. Peyton32, Kevin K. Marucha18, Mario Jonas9, Megan E. Meuti32, Neil D. Rawlings, Qirui Zhang32, Rosaline W. Macharia9, Rosaline W. Macharia35, Veronika Michalkova7, Veronika Michalkova36, Zahra Jalali Sefid Dashti9, Aaron A. Baumann37, Gerd Gäde38, Heather G. Marco38, Jelle Caers39, Liliane Schoofs39, Michael A. Riehle33, Wanqi Hu40, Zhijian Tu40, Aaron M. Tarone41, Anna R. Malacrida42, Caleb K. Kibet17, Francesca Scolari42, J.J.O. Koekemoer43, Judith H. Willis44, Ludvik M. Gomulski42, Marco Falchetto42, Maxwell J. Scott45, Shuhua Fu41, Sing-Hoi Sze41, Thiago Luiz7, Brian L. Weiss7, Deirdre Walshe3, Jingwen Wang7, Mark Wamalwa46, Mark Wamalwa9, Sarah Mwangi9, Urvashi N. Ramphul3, Anna K. Snyder47, Corey L. Brelsfoard48, Gavin H. Thomas49, George Tsiamis24, Peter Arensburger50, Rita V. M. Rio47, Sandy J. Macdonald49, Sumir Panji9, Sumir Panji38, Adele Kruger9, Alia Benkahla51, Apollo Simon Peter Balyeidhusa52, Atway R. Msangi, Chinyere K. Okoro2, Dawn Stephens, Eleanor J Stanley, Feziwe Mpondo9, Florence N. Wamwiri, Furaha Mramba, Geoffrey H. Siwo53, George Githinji34, Gordon William Harkins9, Grace Murilla, Heikki Lehväslaiho54, Imna I. Malele, Joanna E. Auma, Johnson Kinyua28, Johnson O. Ouma, Loyce M. Okedi, Lucien Manga, Martin Aslett2, Mathurin Koffi6, Michael W. Gaunt55, Mmule Makgamathe, Nicola Mulder38, Oliver Manangwa, Patrick P. Abila, Patrick Wincker56, Richard Gregory4, Rosemary Bateta18, Ryuichi Sakate57, Sheila C. Ommeh28, Stella Lehane3, Tadashi Imanishi57, Victor Chukwudi Osamor58, Yoshihiro Kawahara57, Yoshihiro Kawahara59 
University of Tokyo1, Wellcome Trust Sanger Institute2, Liverpool School of Tropical Medicine3, University of Liverpool4, King Abdulaziz University5, Institut de recherche pour le développement6, Yale University7, Harvard University8, University of the Western Cape9, World Health Organization10, National Institute of Genetics11, Aberystwyth University12, Obihiro University of Agriculture and Veterinary Medicine13, Indian Institute of Technology Mandi14, Indian Institute of Science Education and Research, Bhopal15, Washington University in St. Louis16, International Centre of Insect Physiology and Ecology17, Egerton University18, New Mexico State University19, Institute of Tropical Medicine Antwerp20, University of Cincinnati21, International Atomic Energy Agency22, Alexander Fleming Biomedical Sciences Research Center23, University of Patras24, University of Illinois at Urbana–Champaign25, Wayne State University26, Rothamsted Research27, Jomo Kenyatta University of Agriculture and Technology28, National Institutes of Health29, Baylor University30, University of Wisconsin–Parkside31, Ohio State University32, University of Arizona33, Wellcome Trust34, University of Nairobi35, Slovak Academy of Sciences36, Howard Hughes Medical Institute37, University of Cape Town38, Katholieke Universiteit Leuven39, Virginia Tech40, Texas A&M University41, University of Pavia42, University of Pretoria43, University of Georgia44, North Carolina State University45, Kenyatta University46, West Virginia University47, St. Catharine College48, University of York49, California State Polytechnic University, Pomona50, Pasteur Institute51, Makerere University52, University of Notre Dame53, King Abdullah University of Science and Technology54, University of London55, French Alternative Energies and Atomic Energy Commission56, National Institute of Advanced Industrial Science and Technology57, Covenant University58, University of Tsukuba59
25 Apr 2014-Science
TL;DR: The sequence and annotation of the 366-megabase Glossina mors Titans morsitans genome are described, providing a foundation for research into trypanosomiasis prevention and yield important insights with broad implications for multiple aspects of tsetse biology.
Abstract: Tsetse flies are the sole vectors of human African trypanosomiasis throughout sub-Saharan Africa. Both sexes of adult tsetse feed exclusively on blood and contribute to disease transmission. Notable differences between tsetse and other disease vectors include obligate microbial symbioses, viviparous reproduction, and lactation. Here, we describe the sequence and annotation of the 366-megabase Glossina morsitans morsitans genome. Analysis of the genome and the 12,308 predicted protein–encoding genes led to multiple discoveries, including chromosomal integrations of bacterial (Wolbachia) genome sequences, a family of lactation-specific proteins, reduced complement of host pathogen recognition proteins, and reduced olfaction/chemosensory associated genes. These genome data provide a foundation for research into trypanosomiasis prevention and yield important insights with broad implications for multiple aspects of tsetse biology.

242 citations

Journal ArticleDOI
TL;DR: The large amounts of sialylated mucins, forming a surface coat on infective trypomastigote forms, have an important structural and protective role in this parasite.
Abstract: In the presence of sialic acid donors Trypanosoma cruzi acquires up to 10(7) sialic acid residues on its surface, in a reaction catalyzed by its unique trans-sialidase. Most of these sialic acid residues are incorporated into mucin-like glycoproteins. To further understand the biological role of parasite sialylation, we have measured the amount of mucin in this parasite. We found that both epimastigote and trypomastigote forms have the same number of mucin molecules per surface area, although trypomastigotes have less than 10% of the amount of glycoinositol phospholipids, the other major surface glycoconjugate of T. cruzi. Based on the estimated surface area of each mucin, we calculated that these molecules form a coat covering the entire trypomastigote cell. The presence of the surface coat is shown by transmission electron microscopy of Ruthenium Red-stained parasites. The coat was revealed by binding of antibodies isolated from Chagasic patients that react with high affinity to alpha-galactosyl epitopes present in the mucin molecule. When added to the trypomastigote, these antibodies cause an extensive structural perturbation of the parasite coat with formation of large blebs, ultimately leading to parasite lysis. Interestingly, lysis is decreased if the mucin coat is heavily sialylated. Furthermore, addition of MgCl2 reverses the protective effect of sialylation, suggesting that the sialic acid negative charges stabilize the surface coat. Inhibition of sialylation by anti-trans-sialidase antibodies, found in immunized animals, or human Chagasic sera, also increase killing by anti-alpha-galactosyl antibodies. Therefore, the large amounts of sialylated mucins, forming a surface coat on infective trypomastigote forms, have an important structural and protective role.

197 citations

Journal ArticleDOI
TL;DR: To facilitate the transfer of infectious samples from high-containment laboratories, methods commonly used to inactivate virus are tested and can provide a framework for in-house inactivation of SARS-CoV-2 in other laboratories, ensuring the safe use of samples in lower-cont containment levels.
Abstract: The scientific community has responded to the coronavirus disease 2019 (COVID-19) pandemic by rapidly undertaking research to find effective strategies to reduce the burden of this disease. Encouragingly, researchers from a diverse array of fields are collectively working towards this goal. Research with infectious severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is undertaken in high-containment laboratories; however, it is often desirable to work with samples at lower-containment levels. To facilitate the transfer of infectious samples from high-containment laboratories, we have tested methods commonly used to inactivate virus and prepare the sample for additional experiments. Incubation at 80°C, a range of detergents, Trizol reagents, and UV energies were successful at inactivating a high titer of SARS-CoV-2. Methanol and paraformaldehyde incubation of infected cells also inactivated the virus. These protocols can provide a framework for in-house inactivation of SARS-CoV-2 in other laboratories, ensuring the safe use of samples in lower-containment levels.

183 citations

Journal ArticleDOI
TL;DR: The T. cruzi mucins (TcMUC), a group of highly glycosylated GPI-anchored proteins rich in Thr, Ser, and Pro residues, are expressed in high copy numbers in both insect and mammalian stages of the parasite.

182 citations

Journal ArticleDOI
TL;DR: These findings suggest that one function of the protease-resistant C-terminal domain, containing the amino acid repeats, is to protect the parasite surface from digestive enzymes in the tsetse fly gut.
Abstract: Trypanosoma brucei, the protozoan parasite causing sleeping sickness, is transmitted by a tsetse fly vector. When the tsetse takes a blood meal from an infected human, it ingests bloodstream form trypanosomes that quickly differentiate into procyclic forms within the fly's midgut. During this process, the parasite loses the 107 molecules of variant surface glycoprotein that formed its surface coat, and it develops a new coat composed of several million procyclin molecules. Procyclins, the products of a small multigene family, are glycosyl phosphatidylinositol-anchored proteins containing characteristic amino acid repeats at the C terminus [either EP (EP procyclin, a form of procyclin rich in Glu-Pro repeats) or GPEET (GPEET procyclin, a form of procyclin rich in Glu-Pro-Glu-Glu-Thr repeats)]. We have used a sensitive and accurate mass spectrometry method to analyze the appearance of different procyclins during the establishment of midgut infections in tsetse flies. We found that different procyclin gene products are expressed in an orderly manner. Early in the infection (day 3), GPEET2 is the only procyclin detected. By day 7, however, GPEET2 disappears and is replaced by several isoforms of glycosylated EP, but not the unglycosylated isoform EP2. Unexpectedly, we discovered that the N-terminal domains of all procyclins are quantitatively removed by proteolysis in the fly, but not in culture. These findings suggest that one function of the protease-resistant C-terminal domain, containing the amino acid repeats, is to protect the parasite surface from digestive enzymes in the tsetse fly gut.

168 citations


Cited by
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01 Feb 2009

911 citations

Journal ArticleDOI
TL;DR: Parasites are affected when they themselves, or other organisms, interact with the immune response and, in particular, the cytokine network and the importance of such interactions is discussed in relation to clinical disease and the development and use of vaccines.
Abstract: Concomitant infections are common in nature and often involve parasites. A number of examples of the interactions between protozoa and viruses, protozoa and bacteria, protozoa and other protozoa, protozoa and helminths, helminths and viruses, helminths and bacteria, and helminths and other helminths are described. In mixed infections the burden of one or both the infectious agents may be increased, one or both may be suppressed or one may be increased and the other suppressed. It is now possible to explain many of these interactions in terms of the effects parasites have on the immune system, particularly parasite-induced immunodepression, and the effects of cytokines controlling polarization to the Th1 or Th2 arms of the immune response. In addition, parasites may be affected, directly or indirectly, by cytokines and other immune effector molecules and parasites may themselves produce factors that affect the cells of the immune system. Parasites are, therefore, affected when they themselves, or other organisms, interact with the immune response and, in particular, the cytokine network. The importance of such interactions is discussed in relation to clinical disease and the development and use of vaccines.

632 citations

Journal ArticleDOI
TL;DR: Apart from providing stable membrane anchorage, GPI anchors have been implicated in the sequestration of GPI-anchored proteins into specialised membrane microdomains, known as lipid rafts, and in signal transduction events.
Abstract: The discovery of glycosylphosphatidylinositol (GPI) membrane anchors has had a significant impact on several areas of eukaryote cell biology. Studies of the African trypanosome, which expresses a dense surface coat of GPI-anchored variant surface glycoprotein, have played important roles in establishing the general structure of GPI membrane anchors and in delineating the pathway of GPI biosynthesis. The major cell-surface molecules of related parasites are also rich in GPI-anchored glycoproteins and/or GPI-related glycophospholipids, and differences in substrate specificity between enzymes of trypanosomal and mammalian GPI biosynthesis may have potential for the development of anti-parasite therapies. Apart from providing stable membrane anchorage, GPI anchors have been implicated in the sequestration of GPI-anchored proteins into specialised membrane microdomains, known as lipid rafts, and in signal transduction events.

608 citations

Journal ArticleDOI
TL;DR: The organisms concerned are unicellular, spindle‐ like flagellates that flourish in the digestive systems of arthropods, in the blood, macrophages and brains of vertebrates from humans to lizards, and even in the sap of coconut palms and lemon trees.
Abstract: All organisms adapt to changes in their environment by adjustments in gene expression, and in all organisms, from Escherichia coli to man, the most important control point is at transcription initiation. All, that is, except those belonging to one very small family of early‐branching eukaryotes, which seems to have completely lost the ability to regulate transcription by RNA polymerase II. The organisms concerned are unicellular, spindle‐ like flagellates that flourish in the digestive systems of arthropods, in the blood, macrophages and brains of vertebrates from humans to lizards, and even in the sap of coconut palms and lemon trees. Many of them are able to multiply both in a vertebrate (or plant) and an invertebrate, which serves to transmit the parasites from one vertebrate (or plant) to the next. Adaptation to the two distinct environments, with different temperatures, nutrients and defences, requires major changes in gene expression. Yet this seems to be achieved in the total absence of any developmental regulation of RNA polymerase II; perhaps even without any specific polymerase II transcription initiation. This extraordinary state of affairs might be written off as an irrelevant evolutionary quirk (and, indeed, might have even gone unnoticed) if it were not for the fact that some of the organisms concerned, the trypanosomes and the leishmanias, kill millions of people every year (http://www.who.ch). The leishmanias cause a spectrum of diseases ranging from self‐resolving skin ulcers to lethal infection of the internal organs. One‐and‐a‐half to two million people are newly infected every year in the tropics and southern Europe. Leishmania has an extracellular form in the gut of the vector, the sand‐fly, but multiply as spherical aflagellate forms within the lysosomes of mammalian macrophages. Leishmania must be phagocytosed without activating the host macrophage and must combat oxidative, acidic and proteolytic stresses. The South …

561 citations

Journal ArticleDOI
TL;DR: The structural diversity of the GPI anchor and its putative cellular functions, including involvement in lipid raft partitioning, signal transduction, targeting to the apical membrane, and prion disease pathogenesis are discussed.
Abstract: Positioned at the C-terminus of many eukaryotic proteins, the glycosylphosphatidylinositol (GPI) anchor is a posttranslational modification that anchors the modified protein in the outer leaflet of the cell membrane. The GPI anchor is a complex structure comprising a phosphoethanolamine linker, glycan core, and phospholipid tail. GPI-anchored proteins are structurally and functionally diverse and play vital roles in numerous biological processes. While several GPI-anchored proteins have been characterized, the biological functions of the GPI anchor have yet to be elucidated at a molecular level. This review discusses the structural diversity of the GPI anchor and its putative cellular functions, including involvement in lipid raft partitioning, signal transduction, targeting to the apical membrane, and prion disease pathogenesis. We specifically highlight studies in which chemically synthesized GPI anchors and analogues have been employed to study the roles of this unique posttranslational modification.

552 citations