Front. Vet. Sci.Frontiers in Veterinary ScienceFront. Vet. Sci.2297-1769Frontiers Media S.A.10.3389/fvets.2021.710352Veterinary ScienceMini ReviewAdvances in the Study of the Tick Cattle Microbiota and the Influence on Vectorial CapacityAguilar-DíazHugo1Quiroz-CastañedaRosa Estela2*Cobaxin-CárdenasMayra2Salinas-EstrellaElizabeth2Amaro-EstradaItzel21Unidad de Artropodología del Centro Nacional de Investigación Disciplinaria en Salud Animal e Inocuidad, Instituto Nacional de Investigaciones Forestales, Agrícolas y Pecuarias, Morelos, Mexico2Unidad de Anaplasmosis del Centro Nacional de Investigación Disciplinaria en Salud Animal e Inocuidad, Instituto Nacional de Investigaciones Forestales, Agrícolas y Pecuarias, Morelos, Mexico
Edited by: Mourad Ben Said, University of Manouba, Tunisia
Reviewed by: Rochelle Haidee Daclan Ybanez, Obihiro University of Agriculture and Veterinary Medicine, Japan; Alexandra Corduneanu, University of Agricultural Sciences and Veterinary Medicine of Cluj-Napoca, Romania
*Correspondence: Rosa Estela Quiroz-Castañeda requiroz79@yahoo.com.mx
This article was submitted to Parasitology, a section of the journal Frontiers in Veterinary Science
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The information from the tick cattle microbiota suggests that the microbial populations may modulate a successful infection process of the tick-borne pathogens. Therefore, there is a need to know the microbial population and their interactions. In this mini-review, we present several examples of how microbiota regulates the survival of pathogens inside the tick and contributes to fitness, adaptation, and tick immunity, among others. The communication between the tick microbiota and the host microbiota is vital to understanding the pathogen transmission process. As part of the tick microbiota, the pathogen interacts with different microbial populations, including the microorganisms of the host microbiota. These interactions comprise a microsystem that regulates the vectorial capacity involved in tick-borne diseases. The knowledge we have about the vectorial capacity contributes to a better understanding of tick-borne pathogens. Additionally, using approaches based on multi-omics strategies applied to studying the microbiota and its microbiome allows the development of strategies to control ticks. The results derived from those studies reveal the dynamics of the microbiota and potential targets for anti-tick vaccine development. In this context, the anti-microbiota vaccines have emerged as an alternative with a good prognosis. Some strategies developed to control other arthropods vectors, such as paratransgenesis, could control ticks and tick-borne diseases.
bovine hostvector of transmissionmetagenomicsmicrobiotamicrobiomevectorial capacityticksIntroduction
Infectious diseases have been one of the main restrictions worldwide for animal production improvement, with significant economic losses. The significant risk that endangers animal health is the arthropod vector and the pathogens they transmit and those that have been controlled or eradicated, and after a while, they reemerge. Ticks are hematophagous ectoparasites, the main biological vectors of numerous infectious diseases (tick-borne diseases) (1–3) (Figure 1).
Mode of acquisition of tick-borne pathogens. The different stages of tick (larva, nymph, and adult) may transmit bacteria to intermediate or final host.
Although the study of the tick microbiota and the biological processes in which it participates are still in progress to date, there is not enough information about its role in the vectorial capacity, infection, and pathogen transmission. This study opens up a research field to study and elucidate new targets for developing drugs/vaccines to prevent diseases that affect animals, including humans. The development of anti-tick vaccines based on the microbiota represents a promising approach to control tick infestations. In this regard, the study of the tick microbiota contributes to elucidate the interactions that may be influencing vital processes and then avoiding the transmission of pathogens (4, 5). However, there is much work to obtain an effective drug or vaccine to control tick-borne diseases and the pathogens that cause them.
A Brief Overview of Tick-Borne Diseases In Cattle
During the last years, the number of tick-borne diseases caused by bacteria Anaplasma, Ehrlichia, and Coxiella has increased, affecting livestock productivity (6). Anaplasma marginale causes bovine anaplasmosis resulting in economic losses to the cattle industry due to a significant reduction of beef and dairy production (7). More recently, some coinfections with piroplasmas and other Anaplasmataceae reported in cattle and buffaloes show the circulation of diverse genotypes of A. marginale worldwide (8).
So far, there exist more than 20 genomes and draft genomes of A. marginale, whose content could contribute to the identification and participation of the genes involved in the microbiota–vector–host interaction (9–11).
Ehrlichia ruminantium is transmitted by Amblyomma and causes Heartwater, the most important livestock disease in Africa and the Caribbean, while the emerging Ehrlichia minasensis also infects cattle (12–14). As an example of the intrinsic interaction between pathogen and the host cell, molecular studies reveal that the genome of Ehrlichia sp. has lost genes associated with metabolism whose activities are covered by the host cell (15). In the genomic context, only a few genomes are available for Ehrlichia species (16, 17).
In European livestock, coxiellosis, caused by Coxiella burnetii and transmitted by Hyalomma spp. and Rhipicephalus spp. has a significant prevalence in the Mediterranean countries (18).
At the moment, there exist more than 75 Coxiella genomes reported that contain a large number of genes participating in adhesion, invasion, intracellular trafficking, host-cell modulation, and detoxification (19).
In Africa, Ben Said et al. (20) interestingly identified the spirochaetes, Borrelia burgdorferi, in goats, sheep, camels, and cattle, transmitted by Rhipicephalus and Hyalomma. The recent molecular detection of Rickettsia spp. and C. burnetii in cattle and water buffalo in Luzon Island of the Philippines reveals the potential zoonotic transmission mediated by Rhipicephalus microplus (21).
Hemoplasmosis is not strictly considered a tick-borne disease; however, Mycoplasma wenyonii and Candidatus Mycoplasma haemobos reported in cattle are probably transmitted by ticks (22–25).
Cattle Tick Microbiota Interactions and Vectorial Capacity
The microbial communities that comprise the tick microbiota include pathogens, symbionts, and commensals acting as a dynamic and integrative microecosystem, changing in time and scale, that interact into a macrosystem that includes the host (26, 27). Additionally, external factors modulate the diversity of the microbiota: temperature, humidity, geographic location, sex and species, blood intake from the vertebrate host, or even the physical location inside the organs of the tick (gut, ovaries, salivary glands) (28, 29).
Interestingly, this microbiota also contributes to fitness, nutritional adaptation, development, and reproduction and is also involved in establishing pathogens inside the tick (30, 31).
Currently, there exists a close relationship between pathogens and the tick microbiota, which affects their vectorial capacity. Also, colonization, replication, or maturation of an infective form of a pathogen depends mainly on the microbiota composition.
During the blood intake, the hematophagous vector can acquire pathogens from an infected host that transmit to a new host. This is known as vector competence, the ability of a vector to maintain the pathogen development until its transmission to a new host. Vector competence is a component of vectorial capacity that comprises the interactions between vector–pathogen and vector–host, influenced by behavioral and environmental factors such as vector density, longevity, host preference, and feeding habits (32).
In tick cattle, the study of interaction microbiota–vector is still scarce. However, the results reported in other species could be applied as alternatives to identify new targets to control ticks. In addition, after blood intake, some complex interactions are carried out by the triad microbiota–vector–host involved in the pathogen transmission from one host to another (Figure 2). In this regard, the first interaction occurs between the tick and the microbiota of the bovine skin, in which several families of bacteria are present, including Corynebacteriaceae and Staphylococcaceae (teat skin), and Firmicutes, Spirochaetae, Bacteroidetes, and Actinobacteria (interdigital skin) (33, 34) (Figure 2). The microorganisms penetrate from the surface of the skin host deeper into the dermis and might be inducing local immunomodulation (35). For instance, the bacteria Prevotella sp. and Neisseria sp., usually found in the skin and mucosal surface of the host, respectively, have been identified in the midgut of I. ricinus blood-fed females, regardless of the time point of the blood feeding course (36, 37). In contrast, Miranda-Miranda et al. (38, 39) found that bacteria Staphylococcus saprophyticus and Staphylococcus xylosus, located in the skin of bovine, can produce a lethal infection in fully engorged female ticks that lose the ability to oviposit and lead them eventually to death. These findings show that the composition of the microbiota does not always favor tick infestations and pathogen transmission.
Modulation of the interaction microbiota–pathogen–tick–host during blood intake. Upper panel, the microbiota of the tick interacts with the pathogens ingested during blood intake in different organs of the tick (salivary glands, gut, ovary). The microbiota of these organs promotes the establishment and reproduction of the pathogens and, in some cases, in the vectorial capacity to transmit the definitive host. Lower panel, interaction of the microbiota of the bovine blood with the microbiota of the tick. The microbiota of the bovine's skin also interacts with the tick. Created in the Mind the Graph platform.
A second interaction occurs when the microbiota of the salivary glands is in contact with the pathogen that enters the tick. Here, the microbiota has an essential interaction with the pathogens, as in Amblyomma americanum, where the Coxiella-related symbionts in the salivary glands impair the transmission of Ehrlichia chaffeensis (40). These studies illustrate the pathogen interactions occurring in the salivary glands and highlight the role of the tick microbiota that regulates pathogen growth. Alternatively, during the pathogen inoculation, the microbiota of the saliva interacts with the host's components regulating the pathogen passage from the salivary glands to a new bite site.
The tick gut microbiota possesses different microorganisms that participate in metabolic and digestive processes. In this tissue, the blood and the pathogens ingested interact and alter the microbiota, and a third interaction occurs. In such a way, the altered microbiota, which usually provides cofactors, vitamins B, and folate (e.g., Coxiella, Francisella, Rickettsia, respectively), may affect the tick's development, as occurs in Ornithodoros moubata, where antibiotic-based elimination of Francisella endosymbionts compromise the nutritional status of vitamin B, which results in some anomalies in tick development and hampers nymph growth and molting to adults (41). Another role of the microbiota is to regulate the pathogen colonization of the tick gut. For example, in Ixodes scapularis a gut microbiota composed of a high abundance of Rickettsia, Thioclava, and Delftia, and a low abundance of Aquabacterium, Brevibacterium, and Novosphingobium may influence B. burgdorferi colonization negatively (42).
Once established, the pathogens cross the peritrophic membrane and the gut barrier to disseminating to other tissues through the hemolymph. Here, the presence of hemocytes and effector molecules of the tick immune response represents a hostile environment for the pathogen; however, the information about the role of the microbiota of the hemolymph and its interaction is scarce except for the finding of Staphylococcus aureus in Rhipicephalus decoloratus and Rhipicephalus geigy, which were isolated from the adult females hemolymph (43).
Finally, the pathogen could likely take two routes. The first, pathogens redirect to the salivary glands and transmit to a new host, and the second, pathogens transmit by transovarial transmission. In both cases, the pathogen would be interacting with the microbiota of the tissue.
Although the information about the effect of tick-borne pathogens and microbiota is scarce, the report of co-occurences in epidemiological studies has suggested the impact of pathogens on the tick and vice versa (27). For example, the microbial community in the tick gut is related to the virulence and proliferation of Anaplasma sp. and Babesia sp. (27). Adegoke et al. (44) reported that microbial diversity and composition of R. microplus decreases when infected with Theileria sp.; this phenomenon is called pathogen-induced dysbiosis. A similar effect occurs in D. andersoni where endosymbiont Francisella sp. increases the successful pathogenic colonization of Francisella novicida and A. marginale (45, 46).
To address the potential role of the I. scapularis gut bacteria in modulating B. burgdorferi, (42) compared dysbiosed larvae and larvae fed on gentamicin-treated mice. They found that both types of larvae significantly increased engorgement weights and decreased B. burgdorferi colonization, suggesting that tick-altered gut microbiota impairs pathogen colonization.
On the other hand, the induction of I. scapularis antifreeze glycoprotein (IAFGP) occurs in the presence of A. phagocytophilum, which sequesters IAFGP to alter its accumulation in the tick midgut to inhibit the development of biofilms, thus allowing the colonization and establishment of the vector (47, 48).
Understanding how microbial diversity of ticks changes in the presence of pathogens could help propose better strategies to prevent colonization and establishment in the vector (49). Also, the interaction of the tick microbiota with the host microbiota affects vector competence; therefore, the elucidation of the mechanisms involved in these interactions allows the identification of molecular drivers for tick-borne disease (50).
Metagenomic Approaches to Study Pathogens Transmitted by Ticks
So far, we have known that ticks have a great capacity to transmit various pathogens that cause different diseases in cattle. However, the function of the microbiota within the tick life cycle is still unclear due to the significant limitation of their isolation, cultivation, and propagation in culture media and the difficulty of infesting animals with ticks under controlled experimental conditions (30, 51). Because of these drawbacks, the use of next-generation sequencing, molecular techniques, and or multi-omics technologies represents valuable tools in the study of the tick microbiota and its microbiome.
In this regard, the use of 16S rRNA gene-targeted metagenomics provides new insights into tick-borne pathogens (52). The use of this technique has allowed the identification of bacteria in ticks such as R. microplus, Hyalomma anatolicum, and Haemaphysalis montgomery from cows, where Ralstonia, Staphylococcus, and Francisella were some genera detected (53). Metagenomics studies show that the microbiota of R. microplus captured in a rural area in Peru has 147 bacterial genera (54). In contrast, the sequencing of internal tissue and salivary glands from unfed larvae and female ticks of I. ricinus revealed commensal bacteria, endosymbionts, and several pathogenic microorganisms (54, 55). Also, metagenomic analysis of Ixodes persulcatus and Dermacentor nuttalli revealed 10 predominant genera of cattle pathogens and also coinfections (56).
A deeper metagenomic study elucidated the taxonomic and functional profiles of the microbiome of female and male ticks, Ixodes ovatus, I. persulcatus, and Amblyomma variegatum (57). The results of this study showed significant differences in the abundance of genes involved in metabolic pathways between female and male ticks of the same species, suggesting their different lifestyles exert and sex-specific evolutionary pressure independently of the phenomes and microbiomes of the tick gut microbiota.
Complementary information to metagenomics studies in microbiota derives from other multi-omics strategies such as metabolomics, transcriptomics, and proteomics that contribute to advancing knowledge of pathogens and their interactions with the host and vector (58), as in the case of the studies that show diverse components of tick saliva are capable of modulating host immune response through the binding to cell receptors and regulating the secretion of cytokines, chemokines, and interleukins (35). However, we propose that tick microbiota requires an interdisciplinary approach, where the metagenomics study combined with other multi-omics tools complements the results to give a complete vision of the microbiota–vector–host interactions.
Paratransgenesis as a Strategy to Control Ticks
Based on the progress of metagenomics study applied to identify microbiota in other arthropods vectors, such as Aedes, Culex, and Anopheles, strategies such as paratransgenesis could control tick infestations. This strategy is an innovative method with a good prognosis in the vectors control. This strategy requires knowledge of the tick microbiota. After the symbiont microorganisms' identification, they are isolated and genetically transformed to generate bacteria capable of expressing the specific inhibitory molecules and then reintroduced to obstruct vital biological processes of the vector. In this regard, some reports suggest that the interference of crucial processes such as ovogenesis and vitellogenesis decreases the fecundity, development, and hatching rates, which results in the inhibition of the vector population growth (59). Similarly, another target is the transformation of bacteria that interfere with the digestive capacity, leading to reduced vector reproduction and preventing pathogen dissemination (59). Adopting strategies based on metagenomic studies allows identifying symbiont bacteria in the tick microbiota that can be genetically modified and cultivated with higher efficiency, which overcomes the need to produce genetically modified vectors (60, 61).
Microbial Targets: Anti-Tick Vaccines
In response to the presence of acaricide-resistant populations, several vaccine proposals were developed in the last years, including the use of antigens such as Gavac, a vaccine based on protein Bm86 (62). The formulation of cocktail anti-tick vaccines has been reported using combinations of antigens, like Bm91 (R. microplus); subolesin 4E6 (I. scapularis); serpins rRAS-2 and rRAS-4 (R. appendiculatus); and glutathione S-transferase rGST-Av (A. variegatum), among others (63).
Currently, the use of experimental anti-tick vaccines targeting the microbiota reveals that modifications in the microbial populations of the gut could alter essential processes in a tick. For instance, the use of this experimental anti-tick vaccine developed after a functional metagenomic analysis shows that immunization of α-1,3-galactosyltransferase-deficient mice with Escherichia coli BL21 induces the production of anti-E. coli and anti-α-Gal IgM and IgG associated with mortality of I. ricinus nymphs during feeding, which concurred with the abundance of α-1,3-galactosyltransferase genes and possibly α-Gal identified by tick microbiome metagenomics analysis (5).
Finally, the search for new vaccine targets should encompass those proteins of the tick immune response involved in the tolerance of microbial populations (tick microbiota), like different proteins identified by immunoinformatic analysis (64).
Conclusions
Here, we show a general view of different approaches for studying the tick microbiota and other arthropod vectors, intending to integrate the current knowledge and present new alternatives for tick control. From our perspective, in this mini-review, we include recent results that show that the more knowledge and manipulation we have of the microbiota, we get closer to new vaccine development.
The study of the tick microbiota based on metagenomics approaches allows identifying microorganisms and can elucidate the genes that shape the microbiome.
Although the microbiota participates in biological processes like adaptation, development, reproduction, defense against environmental stress, and immunity, information about the interactions and mechanisms involved in vectorial capacity is still scarce and, at the same time, is a field with potential for the identification of vaccine targets.
Considering that many biological interactions function as holobionts (host organism and its associated microbial community) and that, in turn, holobionts make up a more extensive consortium, it is impossible to think that the tick microbiota and tick-borne pathogens are isolated processes.
Undoubtedly, deciphering the interaction of the tick and host–microbiota and how they communicate will provide invaluable information to develop novel strategies for controlling ticks and vector-borne pathogens, like those anti-microbiota and anti-tick vaccine candidates that could benefit animal health and provide acaricide-free environments.
Author Contributions
REQ-C and HA-D: conceptualization. REQ-C, HA-D, ES-E, MC-C, and IA-E: investigation and original draft preparation and writing and draft preparation. REQ-C and HA-D: review and editing. All the authors have read and agreed to the published version of the manuscript.
Conflict of Interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
Publisher's Note
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IAE acknowledge to Project CONACyT CB 252577.
ReferencesEstrada-PeñaASalmanM. Current limitations in the control and spread of ticks that affect livestock: a review. (2013) 3:221–35. 10.3390/agriculture3020221Cabezas-CruzAEspinosaPJObregónDAAlberdiPde la FuenteJ. Ixodes scapularis tick cells control anaplasma phagocytophilum infection by increasing the synthesis of phosphoenolpyruvate from tyrosine. . (2017) 7:375. 10.3389/fcimb.2017.0037528861402Saracho-BotteroMNTarragonaELSebastianPSVenzalJMMangoldAJGuglielmoneAA. Ticks infesting cattle and humans in the Yungas Biogeographic Province of Argentina, with notes on the presence of tick-borne bacteria. (2018) 74:107–16. 10.1007/s10493-018-0208-429380169BhowmickBHanQ. Understanding tick biology and its implications in anti-tick and transmission blocking vaccines against tick-borne pathogens. (2020) 7:319. 10.3389/fvets.2020.0031933062650Mateos-HernándezLObregónDMayeJBorneresJVersilleNde la FuenteJ. Anti-tick microbiota vaccine impacts ixodes ricinus performance during feeding. (2020) 8:702. 10.3390/vaccines804070233233316ParolaPPaddockCDRaoultD. Tick-borne rickettsioses around the world: emerging diseases challenging old concepts. (2005) 18:719–56. 10.1128/CMR.18.4.719-756.200516223955KocanKMde la FuenteJBlouinEFCoetzeeJFEwingSA. The natural history of Anaplasma marginale. . (2010) 167:95–107. 10.1016/j.vetpar.2009.09.01219811876Al-HosaryARăileanuCTauchmannOFischerSNijhofAMSilaghiC. Epidemiology and genotyping of Anaplasma marginale and co-infection with piroplasms and other Anaplasmataceae in cattle and buffaloes from Egypt. (2020) 13:495. 10.1186/s13071-020-04372-z32993778BraytonKAKappmeyerLSHerndonDRDarkMJTibbalsDLPalmerGH. Complete genome sequencing of Anaplasma marginale reveals that the surface is skewed to two superfamilies of outer membrane proteins. (2005) 102:844–9. 10.1073/pnas.040665610215618402QuirozCastañeda REAmaro-EstradaIMartínez-OcampoFRodríguez-CamarilloSDantánGonzález ECobaxin-CárdenasM. Draft genome sequence of anaplasma marginale strain Mex-01-001-01, a Mexican strain that causes bovine anaplasmosis. (2018) 7:e01101–18. 10.1128/MRA.01101-1830533750Martínez-OcampoFQuiroz-CastañedaREAmaro-EstradaICobaxinCárdenas MDantán-GonzálezERodríguez-CamarilloS. Draft genome sequences of Anaplasma marginale Strains MEX-15-099-01 and MEX-31-096-01, two Mexican isolates with different degrees of virulence. (2019) 8:e01184. 10.1128/MRA.01184-1931699769AllsoppBA. Heartwater – Ehrlichia ruminantium infection Aetiology Ante-mortem diagnosis pathology and post-mortem diagnosis. (2015) 34:557–68. 10.20506/rst.34.2.237926601456Cabezas-CruzAZweygarthEAguiarDM. Ehrlichia minasensis, an old demon with a new name. (2019) 10:828–9. 10.1016/j.ttbdis.2019.03.01830940413PeterSGAbogeGOKariukiHWKandumaEGGakuyaDWMaingiN. Molecular prevalence of emerging Anaplasma and Ehrlichia pathogens in apparently healthy dairy cattle in peri-urban Nairobi, Kenya. (2020) 16:364. 10.1186/s12917-020-02584-032993638McBrideJWWalkerDH. Molecular and cellular pathobiology of Ehrlichia infection: targets for new therapeutics and immunomodulation strategies. (2011) 13:e3. 10.1017/S146239941000173021276277CollinsNELiebenbergJde VilliersEPBraytonKALouwEPretoriusA. The genome of the heartwater agent Ehrlichia ruminantium contains multiple tandem repeats of actively variable copy number. (2005) 102:838–43. 10.1073/pnas.040663310215637156AguiarDJoãoALucianoNEmilieBAlejandroC-C. Complete genome sequence of an ehrlichia minasensis strain isolated from cattle. . (2021) 8:e00161–e00119. 10.1128/MRA.00161-1930975809KörnerSMakertGRUlbertSPfefferMMertens-ScholzK. The prevalence of coxiella burnetii in hard ticks in europe and their role in q fever transmission revisited—a systematic review. (2021) 8:233. 10.3389/fvets.2021.65571533981744HemsleyCMO'NeillPAEssex-LoprestiANorvilleIHAtkinsTPTitballRW. Extensive genome analysis of Coxiella burnetii reveals limited evolution within genomic groups. (2019) 20:441. 10.1186/s12864-019-5833-831164106Ben SaidMBelkahiaHAlbertiAAbdiKZhiouaMDaaloul-JedidiM. First molecular evidence of Borrelia burgdorferi sensu lato in goats, sheep, cattle and camels in Tunisia. . (2016) 23:442–7. 10.5604/12321966.121918427660865GalayRLTalactacMRAmbita-SalemBVChuDMMDela CostaLMOSalangsangCMA. Molecular detection of Rickettsia Spp. and coxiella burnetii in cattle, water buffalo, and rhipicephalus (Boophilus) microplus ticks in luzon island of the philippines. . (2020) 5:54. 10.3390/tropicalmed502005432260468MeliMLWilliBDreherUMCattoriVKnubben-SchweizerGNussK. Identification, molecular characterization, and occurrence of two bovine hemoplasma species in Swiss cattle and development of real-time TaqMan quantitative PCR assays for diagnosis of bovine hemoplasma infections. (2010) 48:3563–8. 10.1128/JCM.02224-0920686093Martínez-OcampoFRodríguez-CamarilloSDAmaro-EstradaIQuiroz-CastañedaRE. Draft genome sequence of “Candidatus Mycoplasma haemobos,” a hemotropic mycoplasma identified in cattle in Mexico. (2016) 4:1–2. 10.1128/genomeA.00656-1627389272SouzaUAOberratherKFagundes-MoreiraRAlmeidaBAde ValleSdeF. First molecular detection of Mycoplasma ovis (Hemotropic mycoplasmas) from Sheep in Brazil. (2019) 28:360–6. 10.1590/s1984-2961201902231215606QuirozCastañeda REAragónKMDiazHAPreciado de la TorreJF. Molecular detection of bovine hemotrophic mycoplasmas in Mexico. (2020) 13:67–82. 10.26457/recein.v13i52.2183BergGRybakovaDFischerDCernavaTVergèsM-CCCharlesT. Microbiome definition re-visited: old concepts and new challenges. (2020) 8:103. 10.1186/s40168-020-00875-032819450BonnetSIPolletT. Update on the intricate tango between tick microbiomes and tick-borne pathogens. (2021) 43:e12813. 10.1111/pim.1281333314216GurfieldNGrewalSCuaLSTorresPJKelleyST. Endosymbiont interference and microbial diversity of the Pacific coast tick, Dermacentor occidentalis, in San Diego County, California. (2017) 5:e3202. 10.7717/peerj.320228503372BrinkerhoffRJClarkCOcasioKGauthierDTHynesWL. Factors affecting the microbiome of Ixodes scapularis and Amblyomma americanum. . (2020) 15:e0232398. 10.1371/journal.pone.023239832413031BonnetSIBinetruyFHernández-JarguínAMDuronO. The tick microbiome: why non-pathogenic microorganisms matter in tick biology and pathogen transmission. (2017) 7:236. 10.3389/fcimb.2017.0023628642842PolletTSprongHLejalEKrawczykAIMoutaillerSCossonJ-F. The scale affects our view on the identification and distribution of microbial communities in ticks. (2020) 13:36. 10.1186/s13071-020-3908-731964404BeerntsenBTJamesAAChristensenBM. Genetics of mosquito vector competence. (2000) 64:115–37. 10.1128/MMBR.64.1.115-137.200010704476Rodrigues HoffmannA. The cutaneous ecosystem: the roles of the skin microbiome in health and its association with inflammatory skin conditions in humans and animals. (2017) 28:60–e15. 10.1111/vde.1240828133874PorcellatoDMeisalRBombelliANarvhusJA. A core microbiota dominates a rich microbial diversity in the bovine udder and may indicate presence of dysbiosis. (2020) 10:21608. 10.1038/s41598-020-77054-633303769BoulangerNWikelS. Induced transient immune tolerance in ticks and vertebrate host: a keystone of tick-borne diseases?. . (2021) 12:284. 10.3389/fimmu.2021.62599333643313ElliottDMichaelWBuckleyCMFSprattDA. Cultivable oral microbiota of domestic dogs. . (2005) 43:5470–6. 10.1128/JCM.43.11.5470-5476.200516272472DimitriuPBrandonIKausarMHilaryLMohnWWHillebrandGG. New insights into the intrinsic and extrinsic factors that shape the human skin microbiome. (2021) 10:e00839–19. 10.1128/mBio.00839-1931266865Miranda-MirandaECossio-BayugarRQuezada-DelgadoMRSachman-RuizBReynaud-GarzaE. Staphylococcus saprophyticus causa infeccion letal en la garrapata del ganado Rhipicephalus microplus, in: Estrada VenegasEGEquihua MartinezAChaires GrijalvaMPAcuña SotoJAPadilla RamirezJRMendoza EstradaA, Editors. México: Sociedad Mexicana de Entomología A.C. (2009) p. 104–8.Miranda-MirandaECossio-BayugarRQuezada-DelgadoMDRSachman-RuizBReynaudE. Staphylococcus saprophyticus is a pathogen of the cattle tick Rhipicephalus (Boophilus) microplus. (2010) 20:1055–67. 10.1080/09583157.2010.505325KlyachkoOSteinBDGrindleNClayKFuquaC. Localization and visualization of a coxiella-type symbiont within the lone star tick, Amblyomma americanum. . (2007) 73:6584–94. 10.1128/AEM.00537-0717720830DuronOMorelONoëlVBuysseMBinetruyFLancelotR. Tick-bacteria mutualism depends on B vitamin synthesis pathways. . (2018) 28:1896–902.e5. 10.1016/j.cub.2018.04.03829861133NarasimhanSRajeevanNLiuLZhaoYOHeisigJPanJ. Gut microbiota of the tick vector Ixodes scapularis modulate colonization of the Lyme disease spirochete. (2014) 15:58–71. 10.1016/j.chom.2013.12.00124439898AmooAODipeoluOOAkinboadeAOAdeyemiA. Bacterial isolation from and transmission by Boophilus decoloratus and Boophilus geigyi. . (1987) 34:69–74.3108116AdegokeAKumarDBoboCRashidMIDurraniAZSajidMS. Tick-borne pathogens shape the native microbiome within tick vectors. (2020) 8:1299. 10.3390/microorganisms809129932854447MacalusoKRSonenshineDECeraulSMAzadAF. Rickettsial infection in Dermacentor variabilis (Acari: Ixodidae) inhibits transovarial transmission of a second Rickettsia. (2002) 39:809–13. 10.1603/0022-2585-39.6.80912495176GallCAReifKEScolesGAMasonKLMouselMNohSM. The bacterial microbiome of Dermacentor andersoni ticks influences pathogen susceptibility. (2016) 10:1846–55. 10.1038/ismej.2015.26626882265HeisigMAbrahamNMLiuLNeelakantaGMattessichSSultanaH. Antivirulence properties of an antifreeze protein. (2014) 9:417–24. 10.1016/j.celrep.2014.09.03425373896AbrahamNMLiuLJutrasBLYadavAKNarasimhanSGopalakrishnanV. Pathogen-mediated manipulation of arthropod microbiota to promote infection. (2017) 114:E781–90. 10.1073/pnas.161342211428096373SeguraJAIsazaJPBoteroLEAlzateJFGutiérrezLA. Assessment of bacterial diversity of Rhipicephalus microplus ticks from two livestock agroecosystems in Antioquia, Colombia. (2020) 15:e0234005. 10.1371/journal.pone.023400532609768de la FuenteJAntunesSBonnetSCabezas-CruzADomingosAGEstrada-PeñaA. Tick-pathogen interactions and vector competence: identification of molecular drivers for tick-borne diseases. . (2017) 7:114. 10.3389/fcimb.2017.0011428439499GreayTLGoftonAWPapariniARyanUMOskamCLIrwinPJ. Recent insights into the tick microbiome gained through next-generation sequencing. (2018) 11:12. 10.1186/s13071-017-2550-529301588ThoendelM. targeted metagenomics offers insights into potential tick-borne pathogens. (2020) 58:e01893–20. 10.1128/JCM.01893-2032878948KarimSBudachetriKMukherjeeNWilliamsJKausarAHassanMJ. A study of ticks and tick-borne livestock pathogens in Pakistan. (2017) 11:1–17. 10.1371/journal.pntd.000568128650978Rojas-JaimesJLindo-SeminarioDCorrea-NúñezGDiringerB. Characterization of the bacterial microbiome of Rhipicephalus (Boophilus) microplus collected from Pecari tajacu “Sajino” Madre de Dios, Peru. (2021) 11:6661. 10.1038/s41598-021-86177-333758359Hernández-JarguínADíaz-SánchezSVillarMde la FuenteJ. Integrated metatranscriptomics and metaproteomics for the characterization of bacterial microbiota in unfed Ixodes ricinus. . (2018) 9:1241–51. 10.1016/j.ttbdis.2018.04.02029753651JiaoJLuZYuYOuYFuMZhaoY. Identification of tick-borne pathogens by metagenomic next-generation sequencing in Dermacentor nuttalli and Ixodes persulcatus in Inner Mongolia, China. (2021) 14:287. 10.1186/s13071-021-04740-334044867ObregónDBardEAbrialDEstrada-PeñaACabezas-CruzA. Sex-specific linkages between taxonomic and functional profiles of tick gut microbiomes. (2019) 9:298. 10.3389/fcimb.2019.0029831475121VillarMAyllónNAlberdiPMorenoAMorenoMTobesR. Integrated metabolomics, transcriptomics and proteomics identifies metabolic pathways affected by anaplasma phagocytophilum infection in tick cells*[S]. (2015) 14:3154–72. 10.1074/mcp.M115.05193826424601WilkeABBMarrelliMT. Paratransgenesis: a promising new strategy for mosquito vector control. (2015) 8:342. 10.1186/s13071-015-0959-226104575Ben BeardCCordon-RosalesCDurvasulaRV. Bacterial symbionts of the triatominae and their potential use in control of Chagas disease transmission. . (2002) 47:123–141. 10.1146/annurev.ento.47.091201.14514411729071RiehleMAJacobs-LorenaM. Using bacteria to express and display anti-parasite molecules in mosquitoes: current and future strategies. (2005) 35:699–707. 10.1016/j.ibmb.2005.02.00815894187de la FuenteJAlmazanCCanalesMPerez de la LastraJMKocanKMWilladsenP. A ten-year review of commercial vaccine performance for control of tick infestations on cattle. . (2007) 8:23–8. 10.1017/S146625230700119317692140NdawulaCJTaborAE. Cocktail anti-tick vaccines: the unforeseen constraints and approaches toward enhanced efficacies. (2020) 8:457. 10.3390/vaccines803045732824962Rodríguez-CamarilloSDQuiroz-CastañedaREAguilar-DíazHVara-PastranaJEPescador-PérezDAmaro-EstradaI. Immunoinformatic analysis to identify proteins to be used as potential targets to control bovine anaplasmosis. (2020) 2020:8882031. 10.1155/2020/888203132908531