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1.
Rev Med Virol ; 34(4): e2571, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39039630

ABSTRACT

Vector-borne viruses pose a significant health problem worldwide, as they are transmitted to humans through the bite of infected arthropods such as mosquitoes and ticks. In recent years, emerging and re-emerging vector-borne diseases have gained attention as they can cause a wide spectrum of neurological manifestations. The neurological manifestations of vector-borne viruses encompass a board spectrum of clinical manifestations, ranging from mild and self-limiting symptoms to severe and life-threatening conditions. Common neurological complications include viral encephalitis, acute flaccid paralysis, aseptic meningitis, and various neuromuscular disorders. The specific viruses responsible for these neurological sequelae vary by geographic region and include Orthoflavivirus nilense, Zika virus, dengue virus, chikungunya virus, Japanese encephalitis virus, and tick-borne encephalitis virus. This review focuses on the pathogenesis of these neurologic complications and highlights the mechanisms by which vector-borne viruses invade the central nervous system and trigger neuroinflammatory responses. Diagnostic challenges and strategies for early detection of neurological manifestations are discussed, emphasising the importance of clinical suspicion and advanced laboratory testing.


Subject(s)
Flaviviridae , Vector Borne Diseases , Humans , Animals , Vector Borne Diseases/virology , Flaviviridae/physiology , Flaviviridae/genetics , Togaviridae/pathogenicity , Flaviviridae Infections/virology , Flaviviridae Infections/transmission , Nervous System Diseases/virology , Nervous System Diseases/etiology
2.
PLoS Negl Trop Dis ; 18(7): e0012286, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38959260

ABSTRACT

BACKGROUND: Habitat modification and land use changes impact ecological interactions and alter the relationships between humans and nature. Mexico has experienced significant landscape modifications at the local and regional scales, with negative effects on forest cover and biological biodiversity, especially in the Yucatan peninsula in southeastern Mexico. Given the close relationship between landscape modification and the transmission of zoonotic and vector-borne diseases, it is essential to develop criteria for identifying priority zoonoses in the south of the country. METHODOLOGY/PRINCIPAL FINDINGS: We reviewed 165 published studies on zoonotic and vector-borne diseases in the region (2015-2024). We identified the most frequent vectors, reservoirs, and hosts, the most prevalent infections, and the factors associated with transmission risk and the anthropogenic landscape modification in urban, rural, ecotone, and sylvatic habitats. The most relevant pathogens of zoonotic risk included Trypanosoma cruzi, arboviruses, Leishmania, Rickettsia, Leptospira, and Toxoplasma gondii. Trypanosoma cruzi was the vector-borne agent with the largest number of infected vertebrate species across habitats, while Leishmania and arboviruses were the ones that affected the greatest number of people. Dogs, cats, backyard animals, and their hematophagous ectoparasites are the most likely species maintaining the transmission cycles in human settlements, while rodents, opossums, bats, and other synanthropic animals facilitate connection and transmission cycles between forested habitats with human-modified landscapes. Pathogens displayed different prevalences between the landscapes, T. cruzi, arbovirus, and Leptospira infections were the most prevalent in urban and rural settlements, whereas Leishmania and Rickettsia had similar prevalence across habitats, likely due to the diversity and abundance of the infected vectors involved. The prevalence of T. gondii and Leptospira spp. may reflect poor hygiene conditions. Additionally, results suggest that prevalence of zoonotic and vector-borne diseases is higher in deforested areas and agricultural aggregates, and in sites with precarious health and infrastructure services. CONCLUSIONS: Some hosts, vectors, and transmission trends of zoonotic and vector-borne diseases in the YP are well known but others remain poorly recognized. It is imperative to reinforce practices aimed at increasing the knowledge, monitoring, prevention, and control of these diseases at the regional level. We also emphasize the need to perform studies on a larger spatio-temporal scale under the socio-ecosystem perspective, to better elucidate the interactions between pathogens, hosts, vectors, environment, and sociocultural and economic aspects in this and many other tropical regions.


Subject(s)
Vector Borne Diseases , Zoonoses , Animals , Humans , Zoonoses/transmission , Zoonoses/epidemiology , Vector Borne Diseases/transmission , Vector Borne Diseases/epidemiology , Prevalence , Mexico/epidemiology , Ecosystem , Trypanosoma cruzi/isolation & purification , Disease Vectors , Disease Reservoirs/microbiology , Leptospira/isolation & purification , Leptospira/genetics , Leptospira/classification , Chagas Disease/transmission , Chagas Disease/epidemiology , Toxoplasma , Arboviruses/physiology , Leishmania/isolation & purification , Leishmaniasis/transmission , Leishmaniasis/epidemiology
3.
J Math Biol ; 89(2): 16, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38890206

ABSTRACT

In this paper, a multi-patch and multi-group vector-borne disease model is proposed to study the effects of host commuting (Lagrangian approach) and/or vector migration (Eulerian approach) on disease spread. We first define the basic reproduction number of the model, R 0 , which completely determines the global dynamics of the model system. Namely, if R 0 ≤ 1 , then the disease-free equilibrium is globally asymptotically stable, and if R 0 > 1 , then there exists a unique endemic equilibrium which is globally asymptotically stable. Then, we show that the basic reproduction number has lower and upper bounds which are independent of the host residence times matrix and the vector migration matrix. In particular, nonhomogeneous mixing of hosts and vectors in a homogeneous environment generally increases disease persistence and the basic reproduction number of the model attains its minimum when the distributions of hosts and vectors are proportional. Moreover, R 0 can also be estimated by the basic reproduction numbers of disconnected patches if the environment is homogeneous. The optimal vector control strategy is obtained for a special scenario. In the two-patch and two-group case, we numerically analyze the dependence of the basic reproduction number and the total number of infected people on the host residence times matrix and illustrate the optimal vector control strategy in homogeneous and heterogeneous environments.


Subject(s)
Basic Reproduction Number , Computer Simulation , Mathematical Concepts , Models, Biological , Vector Borne Diseases , Basic Reproduction Number/statistics & numerical data , Vector Borne Diseases/transmission , Vector Borne Diseases/epidemiology , Vector Borne Diseases/prevention & control , Humans , Animals , Disease Vectors , Epidemiological Models
4.
Trends Parasitol ; 40(7): 619-632, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38824066

ABSTRACT

Vector-borne diseases (VBDs) impose devastating effects on human health and a heavy financial burden. Malaria, Lyme disease, and dengue fever are just a few examples of VBDs that cause severe illnesses. The current strategies to control VBDs consist mainly of environmental modification and chemical use, and to a small extent, genetic approaches. The genetic approaches, including transgenesis/genome modification and gene-drive technologies, provide the basis for developing new tools for VBD prevention by suppressing vector populations or reducing their capacity to transmit pathogens. The regulatory elements such as promoters are required for a robust sex-, tissue-, and stage-specific transgene expression. As discussed in this review, information on the regulatory elements is available for mosquito vectors but is scant for other vectors.


Subject(s)
Promoter Regions, Genetic , Vector Borne Diseases , Animals , Vector Borne Diseases/prevention & control , Vector Borne Diseases/transmission , Humans , Arthropod Vectors/genetics
5.
Trends Parasitol ; 40(7): 591-603, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38853076

ABSTRACT

Mosquitoes are important vectors for human diseases, transmitting pathogens that cause a range of parasitic and viral infections. Mosquito blood-feeding is heterogeneous, meaning that some human hosts are at higher risk of receiving bites than others, and this heterogeneity is multifactorial. Mosquitoes integrate specific cues to locate their hosts, and mosquito attraction differs considerably between individual human hosts. Heterogeneous mosquito biting results from variations in both host attractiveness and availability and can impact transmission of vector-borne diseases. However, the extent and drivers of this heterogeneity and its importance for pathogen transmission remain incompletely understood. Here, we review methods and recent data describing human characteristics that affect host-seeking behavior and host preferences of mosquito disease vectors, and the implications for vector-borne disease transmission.


Subject(s)
Culicidae , Feeding Behavior , Mosquito Vectors , Animals , Humans , Feeding Behavior/physiology , Culicidae/physiology , Culicidae/parasitology , Mosquito Vectors/physiology , Mosquito Vectors/parasitology , Vector Borne Diseases/transmission , Vector Borne Diseases/prevention & control
6.
J Environ Manage ; 363: 121398, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38852404

ABSTRACT

Scaling irrigated agriculture is a global strategy to mitigate food insecurity concerns. While expanding irrigated agriculture is critical to meeting food production demands, it is important to consider how these land use and land cover changes (LULCC) may alter the water resources of landscapes and impact the spatiotemporal epidemiology of disease. Here, a generalizable method is presented to inform irrigation development decision-making aimed at increasing crop production through irrigation while simultaneously mitigating malaria risk to surrounding communities. Changes to the spatiotemporal patterns of malaria vector (Anopheles gambiae s.s.) suitability, driven by irrigated agricultural expansion, are presented for Malawi's rainy and dry seasons. The methods presented may be applied to other geographical areas where sufficient irrigation and malaria prevalence data are available. Results show that approximately 8.60% and 1.78% of Malawi is maximally suitable for An. gambiae s.s. breeding in the rainy and dry seasons, respectively. However, the proposed LULCC from irrigated agriculture increases the maximally suitable land area in both seasons: 15.16% (rainy) and 2.17% (dry). Proposed irrigation development sites are analyzed and ranked according to their likelihood of increasing malaria risk for those closest to the schemes. Results illustrate how geospatial information on the anticipated change to the malaria landscape driven by increasing irrigated agricultural extent can assist in altering development plans, amending policies, or reassessing water resource management strategies to mitigate expected changes in malaria risk.


Subject(s)
Agricultural Irrigation , Malaria , Water Resources , Malaria/prevention & control , Malawi , Vector Borne Diseases/prevention & control , Animals , Seasons , Agriculture/methods , Anopheles
7.
J Vector Borne Dis ; 61(2): 259-266, 2024 Apr 01.
Article in English | MEDLINE | ID: mdl-38922661

ABSTRACT

BACKGROUND OBJECTIVES: Vector-borne haemoprotozoan diseases comprise diverse group of single celled organism transmitted by haematophagus invertebrates. The current study was aimed at the identification of major haemoprotozoan (Babesia, Theileria and Trypanosoma) in dromedary camel of North Gujarat region in India using microscopy and Polymerase Chain Reaction (PCR). METHODS: A total of 234 blood samples were screened by the microscopic and molecular detection assays. Molecular prevalence studies of Theileria, Trypanosoma spp and Babesia was undertaken using 18s ribosomal DNA, RoTat 1.2 and SS rRNA gene respectively. The data relating to microscopic and molecular prevalence along with associated risk factors were analysed by statistical methods. RESULTS: The overall prevalence of hamoprotozoan disease based on microscopic and molecular investigation was 23.50%. The sensitivity and specificity (95% Confidence Interval) of PCR assay was 100% in comparison to microscopy (45.45 % sensitive and 100 % specific). The kappa coefficient between PCR and microscopy indicated good level of agreement with a value of 0.704 and SE of 0.159. INTERPRETATION CONCLUSION: Despite holding much significance to the animal sector, little work has been undertaken in regional parts of India regarding camel parasites. The present study offers first preliminary research data investigating haemoprotozoan disease using parasitological and molecular methods in camels in the region.


Subject(s)
Babesia , Camelus , Microscopy , Polymerase Chain Reaction , RNA, Ribosomal, 18S , Theileria , Theileriasis , Trypanosoma , Animals , Camelus/parasitology , India/epidemiology , Trypanosoma/genetics , Trypanosoma/isolation & purification , Trypanosoma/classification , Theileria/genetics , Theileria/isolation & purification , Theileria/classification , Babesia/genetics , Babesia/isolation & purification , Babesia/classification , Theileriasis/epidemiology , Theileriasis/parasitology , RNA, Ribosomal, 18S/genetics , DNA, Protozoan/genetics , Babesiosis/epidemiology , Babesiosis/parasitology , Prevalence , Male , Sensitivity and Specificity , Trypanosomiasis/veterinary , Trypanosomiasis/epidemiology , Trypanosomiasis/parasitology , Female , Vector Borne Diseases/epidemiology , Vector Borne Diseases/parasitology , DNA, Ribosomal/genetics
8.
Curr Opin Insect Sci ; 63: 101203, 2024 06.
Article in English | MEDLINE | ID: mdl-38705385

ABSTRACT

Vector-borne diseases are globally prevalent and represent a major socioeconomic problem worldwide. Blood-sucking arthropods transmit most pathogenic agents that cause these human infections. The pathogens transmission to their vertebrate hosts depends on how efficiently they infect their vector, which is particularly impacted by the microbiota residing in the intestinal lumen, as well as its cells or internal organs such as ovaries. The balance between costs and benefits provided by these interactions ultimately determines the outcome of the relationship. Here, we will explore aspects concerning the nature of microbe-vector interactions, including the adaptive traits required for their establishment, the varied outcomes of symbiotic interactions, as well as the factors influencing the transition of these relationships across a continuum from parasitism to mutualism.


Subject(s)
Arthropod Vectors , Symbiosis , Animals , Arthropod Vectors/microbiology , Arthropod Vectors/parasitology , Insect Vectors/microbiology , Insect Vectors/physiology , Vector Borne Diseases/transmission
9.
Trends Parasitol ; 40(6): 500-510, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38744542

ABSTRACT

The prevention of canine vector-borne diseases (CVBDs) is pivotal for the health and welfare of dogs as well as for reducing their zoonotic risk to humans. Scientific knowledge gained in recent years contributed to the development of new strategies for the control of these diseases in different social and cultural contexts. Here, we discuss recent advances in the prevention of vector-borne pathogens (VBPs) affecting dogs with a focus on those of zoonotic relevance.


Subject(s)
Dog Diseases , Vector Borne Diseases , Zoonoses , Animals , Dogs , Dog Diseases/prevention & control , Dog Diseases/parasitology , Dog Diseases/transmission , Vector Borne Diseases/prevention & control , Zoonoses/prevention & control , Zoonoses/transmission , Humans , Disease Vectors
10.
ACS Infect Dis ; 10(6): 1856-1870, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38724015

ABSTRACT

Antiparasitic drug development stands as a critical endeavor in combating infectious diseases which, by affecting the well-being of humans, animals, and the environment, pose significant global health challenges. In a scenario where conventional pharmacological interventions have proven inadequate, the One Health approach, which emphasizes interdisciplinary collaboration and holistic solutions, emerges as a vital strategy. By advocating for the integration of One Health principles into the R&D pharmaceutical pipeline, this Perspective promotes green chemistry methodologies to foster the development of environmentally friendly antiparasitic drugs for both human and animal health. Moreover, it highlights the urgent need to address vector-borne parasitic diseases (VBPDs) within the context of One Health-driven sustainable development, underscoring the pivotal role of medicinal chemists in driving transformative change. Aligned with the Sustainable Development Goals (SDGs) and the European Green Deal, this Perspective explores the application of the 12 Principles of Green Chemistry as a systematic framework to guide drug discovery and production efforts in the context of VBPD. Through interdisciplinary collaboration and a constant commitment to sustainability, the field can overcome the challenges posed by VBPD while promoting global and environmental responsibility. Serving as a call to action, scientists are urged to integrate One Health concepts and green chemistry principles into routine drug development practices, thereby paving the way for a more sustainable R&D pharmaceutical pipeline for antiparasitic drugs.


Subject(s)
Antiparasitic Agents , Green Chemistry Technology , One Health , Antiparasitic Agents/chemistry , Antiparasitic Agents/pharmacology , Humans , Animals , Drug Discovery , Parasitic Diseases/drug therapy , Drug Development , Vector Borne Diseases , Sustainable Development
11.
PLoS Comput Biol ; 20(5): e1012133, 2024 May.
Article in English | MEDLINE | ID: mdl-38805562

ABSTRACT

Novel mosquito genetic control tools, such as CRISPR-based gene drives, hold great promise in reducing the global burden of vector-borne diseases. As these technologies advance through the research and development pipeline, there is a growing need for modeling frameworks incorporating increasing levels of entomological and epidemiological detail in order to address questions regarding logistics and biosafety. Epidemiological predictions are becoming increasingly relevant to the development of target product profiles and the design of field trials and interventions, while entomological surveillance is becoming increasingly important to regulation and biosafety. We present MGDrivE 3 (Mosquito Gene Drive Explorer 3), a new version of a previously-developed framework, MGDrivE 2, that investigates the spatial population dynamics of mosquito genetic control systems and their epidemiological implications. The new framework incorporates three major developments: i) a decoupled sampling algorithm allowing the vector portion of the MGDrivE framework to be paired with a more detailed epidemiological framework, ii) a version of the Imperial College London malaria transmission model, which incorporates age structure, various forms of immunity, and human and vector interventions, and iii) a surveillance module that tracks mosquitoes captured by traps throughout the simulation. Example MGDrivE 3 simulations are presented demonstrating the application of the framework to a CRISPR-based homing gene drive linked to dual disease-refractory genes and their potential to interrupt local malaria transmission. Simulations are also presented demonstrating surveillance of such a system by a network of mosquito traps. MGDrivE 3 is freely available as an open-source R package on CRAN (https://cran.r-project.org/package=MGDrivE2) (version 2.1.0), and extensive examples and vignettes are provided. We intend the software to aid in understanding of human health impacts and biosafety of mosquito genetic control tools, and continue to iterate per feedback from the genetic control community.


Subject(s)
Computer Simulation , Gene Drive Technology , Malaria , Mosquito Control , Mosquito Vectors , Animals , Humans , Mosquito Vectors/genetics , Mosquito Control/methods , Malaria/epidemiology , Malaria/transmission , Malaria/prevention & control , Gene Drive Technology/methods , Computational Biology/methods , Culicidae/genetics , Algorithms , Vector Borne Diseases/transmission , Vector Borne Diseases/epidemiology , Vector Borne Diseases/prevention & control , Population Dynamics
13.
Washington, D.C.; OPS; 2024-05-22. (OPS/CDE/VT/23-0012).
Non-conventional in Spanish | PAHO-IRIS | ID: phr-59825

ABSTRACT

Esta nota técnica busca guiar a los programas nacionales de malaria y a las organizaciones implicadas en el apoyo de los esfuerzos para la eliminación de la malaria en la Región de las Américas, a fin de que intensifiquen las acciones políticas/estratégicas e implementen los cambios operativos necesarios para acelerar la eliminación de P. falciparum como parte de las estrategias nacionales para la eliminación de la malaria. Con tal finalidad, orienta las acciones que deben llevarse a cabo para acelerar la eliminación de P. falciparum en zonas próximas a su eliminación, sin comprometer los esfuerzos unificados de eliminación del paludismo (P. vivax - P. falciparum) y contribuyendo al objetivo final del país de eliminar el paludismo en su conjunto. La aceleración de la eliminación de P. falciparum procura mitigar el riesgo de aparición y propagación de la resistencia a la artemisinina y de la resistencia a los fármacos asociados; acelerar la reducción del número total de casos de paludismo en zonas con una proporción importante de P falciparum; acelerar la eliminación de la malaria (P. vivax y P. falciparum) teniendo en cuenta que P. falciparum es uno de los desencadenantes de las recaídas de P. vivax; desarrollar capacidades en intervenciones para acelerar la eliminación de la malaria a partir de la experiencia de eliminación de P. falciparum, reduciendo el tiempo para alcanzar la eliminación de la malaria; y empoderar a diferentes actores, autoridades de alto nivel, donantes, municipios y otras entidades para la eliminación de la malaria con inspiración en los logros de la eliminación del P. falciparum.


Subject(s)
Malaria , Communicable Diseases , National Health Programs , Vector Borne Diseases
14.
Sci Total Environ ; 933: 173054, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38729373

ABSTRACT

Invasive Aedes aegypti and Aedes albopictus mosquitoes transmit viruses such as dengue, chikungunya and Zika, posing a huge public health burden as well as having a less well understood economic impact. We present a comprehensive, global-scale synthesis of studies reporting these economic costs, spanning 166 countries and territories over 45 years. The minimum cumulative reported cost estimate expressed in 2022 US$ was 94.7 billion, although this figure reflects considerable underreporting and underestimation. The analysis suggests a 14-fold increase in costs, with an average annual expenditure of US$ 3.1 billion, and a maximum of US$ 20.3 billion in 2013. Damage and losses were an order of magnitude higher than investment in management, with only a modest portion allocated to prevention. Effective control measures are urgently needed to safeguard global health and well-being, and to reduce the economic burden on human societies. This study fills a critical gap by addressing the increasing economic costs of Aedes and Aedes-borne diseases and offers insights to inform evidence-based policy.


Subject(s)
Aedes , Mosquito Vectors , Animals , Dengue , Humans , Chikungunya Fever/transmission , Global Health , Vector Borne Diseases/prevention & control , Introduced Species , Mosquito Control/economics , Mosquito Control/methods , Mosquito-Borne Diseases
15.
Adv Parasitol ; 124: 57-89, 2024.
Article in English | MEDLINE | ID: mdl-38754927

ABSTRACT

For over a century, vector ecology has been a mainstay of vector-borne disease control. Much of this research has focused on the sensory ecology of blood-feeding arthropods (black flies, mosquitoes, ticks, etc.) with terrestrial vertebrate hosts. Of particular interest are the cues and sensory systems that drive host seeking and host feeding behaviours as they are critical for a vector to locate and feed from a host. An important yet overlooked component of arthropod vector ecology are the phenotypic changes observed in infected vectors that increase disease transmission. While our fundamental understanding of sensory mechanisms in disease vectors has drastically increased due to recent advances in genome engineering, for example, the advent of CRISPR-Cas9, and high-throughput "big data" approaches (genomics, proteomics, transcriptomics, etc.), we still do not know if and how parasites manipulate vector behaviour. Here, we review the latest research on arthropod vector sensory systems and propose key mechanisms that disease agents may alter to increase transmission.


Subject(s)
Arthropod Vectors , Animals , Arthropod Vectors/physiology , Humans , Arthropods/physiology , Vector Borne Diseases/transmission , Vector Borne Diseases/prevention & control , Host-Parasite Interactions
16.
Parasit Vectors ; 17(1): 227, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38755646

ABSTRACT

Volatile organic compounds (VOCs) are chemicals emitted as products of cell metabolism, which reflects the physiological and pathological conditions of any living organisms. These compounds play a key role as olfactory cues for arthropod vectors such as mosquitoes, sand flies, and ticks, which act in the transmission of pathogens to many animal species, including humans. Some VOCs may influence arthropod behaviour, e.g., host preference and oviposition site selection for gravid females. Furthermore, deadly vector-borne pathogens such as Plasmodium falciparum and Leishmania infantum are suggested to manipulate the VOCs profile of the host to make them more attractive to mosquitoes and sand fly vectors, respectively. Under the above circumstances, studies on these compounds have demonstrated their potential usefulness for investigating the behavioural response of mosquitoes, sand flies, and ticks toward their vertebrate hosts, as well as potential tools for diagnosis of vector-borne diseases (VBDs). Herein, we provide an account for scientific data available on VOCs to study the host seeking behaviour of arthropod vectors, and their usefulness as attractants, repellents, or tools for an early diagnosis of VBDs.


Subject(s)
Culicidae , Psychodidae , Ticks , Volatile Organic Compounds , Animals , Volatile Organic Compounds/metabolism , Psychodidae/physiology , Psychodidae/parasitology , Ticks/physiology , Humans , Culicidae/physiology , Behavior, Animal , Vector Borne Diseases/transmission , Female , Mosquito Vectors/physiology , Mosquito Vectors/parasitology , Plasmodium falciparum/physiology
17.
BMJ Open ; 14(5): e079963, 2024 May 13.
Article in English | MEDLINE | ID: mdl-38740505

ABSTRACT

INTRODUCTION: Vector borne diseases (VBDs) present significant public health challenges in Southeast Asia (SEA), and the increasing number of cases threatens vulnerable communities. Inadequate vector control and management have been linked to the spread of VBDs. To address these issues, community participation has been proposed as a promising approach to enhance health programmes and control of VBDs. This article outlines a protocol for a scoping review of the published literature on community-participation approaches to control VBDs in the SEA region. The primary research question is 'How does community participation complement the control of VBDs in SEA?' This review aims to provide an overview of various approaches and identify barriers and facilitators to effective implementation. METHODS AND ANALYSIS: The research questions will guide the scoping review. In stage 1, peer-reviewed publications from PubMed, Web of Science and Scopus will be searched using predefined search terms related to community-based approaches and VBDs in the SEA region, English, Indonesian and Malay published between 2012 and 2022. In stage 2, the references from relevant articles will be screened for eligibility. In stage 3, eligible articles will be charted in Microsoft Excel to facilitate the review process, and studies will be characterised based on the investigated diseases; this review will also highlight the methodological context of these studies. In stage 4, a thematic analysis will be conducted to derive meaningful findings from the dataset relevant to the research inquiry, followed by writing the results in stage 5. This scoping review aims to be the first to explore community participation in VBD control in the SEA population, providing valuable insights for future research and stakeholders involved in disease control. ETHICS AND DISSEMINATION: This scoping review does not require ethical approval because the methodology synthesises information from available articles. This review is planned for dissemination in academic journals, conference presentations and shared with stakeholders as part of knowledge sharing among those involved in VBD control.


Subject(s)
Community Participation , Vector Borne Diseases , Humans , Community Participation/methods , Asia, Southeastern/epidemiology , Vector Borne Diseases/prevention & control , Research Design , Review Literature as Topic , Animals
18.
PLoS Negl Trop Dis ; 18(5): e0012159, 2024 May.
Article in English | MEDLINE | ID: mdl-38739673

ABSTRACT

BACKGROUND: Rodents are recognized as the hosts of many vector-borne bacteria and protozoan parasites and play an important role in their transmission and maintenance. Intensive studies have focused on their infections in vectors, especially in ticks, however, vector-borne bacterial and protozoan infections in rodents are poorly understood although human cases presenting with fever may due to their infection have been found. METHODS: From May to October 2019, 192 wild rodents were trapped in wild environment of Guangxi Province, and the spleen samples were collected to reveal the presence of vector-borne bacterial and protozoan infections in them. The microorganisms in rodents were identified by detecting their DNA using (semi-)nested PCR. All the PCR products of the expected size were subjected to sequencing, and then analyzed by BLASTn. Furthermore, all the recovered sequences were subjected to nucleotide identity and phylogenetic analyses. RESULTS: As a result, 192 rodents representing seven species were captured, and Bandicota indica were the dominant species, followed by Rattus andamanensis. Based on the (semi-)nested PCR, our results suggested that Anaplasma bovis, Anaplasma capra, Anaplasma ovis, Anaplasma phagocytophilum, "Candidatus Neoehrlichia mikurensis", "Candidatus E. hainanensis", "Candidatus E. zunyiensis", three uncultured Ehrlichia spp., Bartonella coopersplainsensis, Bartonella tribocorum, Bartonella rattimassiliensis, Bartonella silvatica, two uncultured Bartonella spp., Babesia microti and diverse Hepatozoon were identified in six rodent species. More importantly, six species (including two Anaplasma, two Bartonella, "Ca. N. mikurensis" and Bab. microti) are zoonotic pathogens except Anaplasma bovis and Anaplasma ovis with zoonotic potential. Furthermore, dual infection was observed between different microorganisms, and the most common type of co-infection is between "Ca. N. mikurensis" and other microorganisms. Additionally, potential novel Bartonella species and Hepatozoon species demonstrated the presence of more diverse rodent-associated Bartonella and Hepatozoon. CONCLUSIONS: The results in this work indicated great genetic diversity of vector-borne infections in wild rodents, and highlighted the potential risk of human pathogens transmitted from rodents to humans through vectors.


Subject(s)
Genetic Variation , Rodentia , Animals , China/epidemiology , Rodentia/microbiology , Rodentia/parasitology , Phylogeny , Animals, Wild/parasitology , Animals, Wild/microbiology , Anaplasma/genetics , Anaplasma/isolation & purification , Anaplasma/classification , Vector Borne Diseases/transmission , Vector Borne Diseases/microbiology , Vector Borne Diseases/parasitology , Vector Borne Diseases/epidemiology , Bartonella/genetics , Bartonella/isolation & purification , Bartonella/classification , Bacteria/genetics , Bacteria/isolation & purification , Bacteria/classification , Rats
19.
Front Cell Infect Microbiol ; 14: 1365221, 2024.
Article in English | MEDLINE | ID: mdl-38711929

ABSTRACT

Bunyaviruses are a large group of important viral pathogens that cause significant diseases in humans and animals worldwide. Bunyaviruses are enveloped, single-stranded, negative-sense RNA viruses that infect a wide range of hosts. Upon entry into host cells, the components of viruses are recognized by host innate immune system, leading to the activation of downstream signaling cascades to induce interferons (IFNs) and other proinflammatory cytokines. IFNs bind to their receptors and upregulate the expression of hundreds of interferon-stimulated genes (ISGs). Many ISGs have antiviral activities and confer an antiviral state to host cells. For efficient replication and spread, viruses have evolved different strategies to antagonize IFN-mediated restriction. Here, we discuss recent advances in our understanding of the interactions between bunyaviruses and host innate immune response.


Subject(s)
Bunyaviridae Infections , Immunity, Innate , Orthobunyavirus , Bunyaviridae Infections/immunology , Bunyaviridae Infections/virology , Humans , Animals , Orthobunyavirus/immunology , Host-Pathogen Interactions/immunology , Interferons/immunology , Interferons/metabolism , Signal Transduction , Cytokines/metabolism , Cytokines/immunology , Vector Borne Diseases/immunology , Vector Borne Diseases/virology , Vector Borne Diseases/prevention & control , Virus Replication
20.
Lancet Planet Health ; 8(5): e334-e341, 2024 May.
Article in English | MEDLINE | ID: mdl-38729673

ABSTRACT

The impacts of climate change on vector-borne diseases are uneven across human populations. This pattern reflects the effect of changing environments on the biology of transmission, which is also modulated by social and other inequities. These disparities are also linked to research outcomes that could be translated into tools for transmission reduction, but are not necessarily actionable in the communities where transmission occurs. The transmission of vector-borne diseases could be averted by developing research that is both hypothesis-driven and community-serving for populations affected by climate change, where local communities interact as equal partners with scientists, developing and implementing research projects with the aim of improving community health. In this Personal View, we share five principles that have guided our research practice to serve the needs of communities affected by vector-borne diseases.


Subject(s)
Climate Change , Vector Borne Diseases , Vector Borne Diseases/prevention & control , Vector Borne Diseases/epidemiology , Humans
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