10
views
0
recommends
+1 Recommend
1 collections
    0
    shares
      • Record: found
      • Abstract: found
      • Article: found
      Is Open Access

      Diversity and enzymatic capabilities of fungi associated with the digestive tract of larval stages of a shredder insect in Cerrado and Amazon Forest, Brazil Translated title: Diversidade e capacidades enzimáticas de fungos associados ao trato digestivo da fase larval de um inseto triturador em Cerrado e Floresta Amazônica, Brasil

      research-article

      Read this article at

      Bookmark
          There is no author summary for this article yet. Authors can add summaries to their articles on ScienceOpen to make them more accessible to a non-specialist audience.

          Abstract

          Abstract Tropical biomes such as Brazilian Cerrado and Amazon Forest have a great diversity of fungi and insects. Interactions between these organisms can be beneficial to both partners. In streams, these interactions contribute to litter decomposition. Studying the digestive tract (DT) of shredder insects as a habitat for fungal microorganisms is an opportunity to obtain fungal strains with biotechnological potential, which may help to understand the symbiotic relationships between these organisms in tropical forests. This study investigated the fungal community in the DT of larvae of Triplectides (Trichoptera: Leptoceridae) collected in low-order streams in the Cerrado and Amazon Forest biomes in Brazil. Forty-nine fungal isolates were obtained and identified among 32 species and 12 genera. The genus Roussoella was only found in the DT of insects in Amazon Forest streams, while 7 genera only occurred in the DT of insects in Cerrado streams. The genus Penicillium (40%) was the most frequent. In the Cerrado, 78% were producers of CMCase, more than two-fold that in the Amazon Forest (35%). And 62% were producers of xylanase, in the Cerrado and 71% in the Amazon Forest. In this context, the fungal community in the DT of Triplectides larvae may play an important role in the insect diet by breaking down lignocellulosic material.

          Translated abstract

          Resumo Biomas tropicais como o Cerrado brasileiro e a Floresta Amazônica apresentam uma grande diversidade de fungos e insetos. As interações entre esses organismos podem ser benéficas para ambos os parceiros. Em riachos, essas interações contribuem para a decomposição da serapilheira. O estudo do trato digestório (TD) de insetos como um habitat para microrganismos fúngicos é uma oportunidade para obtenção de linhagens fúngicas com potencial biotecnológico, podendo trazer luz para o entendimento das relações simbióticas entre esses organismos em florestas tropicais. Esse estudo investigou a comunidade fúngica do TD de larvas de Triplectides (Trichoptera: Leptoceridae) coletados em riachos de baixa ordem nos biomas Cerrado e Floresta Amazônica no Brasil. Foram obtidos 49 isolados fúngicos e identificados entre 32 espécies de 12 gêneros. O gênero Roussoella foi encontrado apenas no DT de insetos em riachos da Floresta Amazônica, enquanto sete gêneros ocorreram apenas no DT de insetos em riachos do Cerrado. O gênero Penicillium (40%) foi o mais frequente. No Cerrado, 78% foram produtoras de CMCase, mais que o dobro da Floresta Amazônica (35%). E 62% foram produtoras de xilanase, no Cerrado, e 71% na Floresta Amazônica. Nesse contexto, a comunidade fúngica do TD de larvas Triplectides pode desempenhar um papel importante na dieta de insetos por quebrar o material lignocelulósico.

          Related collections

          Most cited references71

          • Record: found
          • Abstract: not found
          • Article: not found

          DNA sequencing with chain-terminating inhibitors

            Bookmark
            • Record: found
            • Abstract: found
            • Article: not found

            The gut microbiota of insects - diversity in structure and function.

            Insect guts present distinctive environments for microbial colonization, and bacteria in the gut potentially provide many beneficial services to their hosts. Insects display a wide range in degree of dependence on gut bacteria for basic functions. Most insect guts contain relatively few microbial species as compared to mammalian guts, but some insects harbor large gut communities of specialized bacteria. Others are colonized only opportunistically and sparsely by bacteria common in other environments. Insect digestive tracts vary extensively in morphology and physicochemical properties, factors that greatly influence microbial community structure. One obstacle to the evolution of intimate associations with gut microorganisms is the lack of dependable transmission routes between host individuals. Here, social insects, such as termites, ants, and bees, are exceptions: social interactions provide opportunities for transfer of gut bacteria, and some of the most distinctive and consistent gut communities, with specialized beneficial functions in nutrition and protection, have been found in social insect species. Still, gut bacteria of other insects have also been shown to contribute to nutrition, protection from parasites and pathogens, modulation of immune responses, and communication. The extent of these roles is still unclear and awaits further studies. © 2013 Federation of European Microbiological Societies. Published by John Wiley & Sons Ltd. All rights reserved.
              Bookmark
              • Record: found
              • Abstract: found
              • Article: not found

              Multiorganismal insects: diversity and function of resident microorganisms.

              All insects are colonized by microorganisms on the insect exoskeleton, in the gut and hemocoel, and within insect cells. The insect microbiota is generally different from microorganisms in the external environment, including ingested food. Specifically, certain microbial taxa are favored by the conditions and resources in the insect habitat, by their tolerance of insect immunity, and by specific mechanisms for their transmission. The resident microorganisms can promote insect fitness by contributing to nutrition, especially by providing essential amino acids, B vitamins, and, for fungal partners, sterols. Some microorganisms protect their insect hosts against pathogens, parasitoids, and other parasites by synthesizing specific toxins or modifying the insect immune system. Priorities for future research include elucidation of microbial contributions to detoxification, especially of plant allelochemicals in phytophagous insects, and resistance to pathogens; as well as their role in among-insect communication; and the potential value of manipulation of the microbiota to control insect pests.
                Bookmark

                Author and article information

                Journal
                bjb
                Brazilian Journal of Biology
                Braz. J. Biol.
                Instituto Internacional de Ecologia (São Carlos, SP, Brazil )
                1519-6984
                1678-4375
                2022
                : 82
                : e260039
                Affiliations
                [02] Gurupi TO orgnameInstituto Federal de Educação orgdiv1Ciência e Tecnologia do Tocantins Brasil
                [01] Palmas orgnameUniversidade Federal do Tocantins orgdiv1Laboratório de Microbiologia e Biotecnologia Ambiental Brazil
                Article
                S1519-69842022000100297 S1519-6984(22)08200000297
                10.1590/1519-6984.260039
                f1e65dcb-0788-458e-aeae-9045c6bf4eb9

                This work is licensed under a Creative Commons Attribution 4.0 International License.

                History
                : 27 April 2022
                : 13 January 2022
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 74, Pages: 0
                Product

                SciELO Brazil

                Categories
                Original Article

                cellulase,celulase,xilanase,Trichoptera,Triplectides,xylanase
                cellulase, celulase, xilanase, Trichoptera, Triplectides, xylanase

                Comments

                Comment on this article