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Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey

SIMPLE SUMMARY: Alexandrium minutum is one of the causing organisms for the occurrence of harmful algae bloom (HABs) in marine ecosystems. This species produces saxitoxin, one of the deadliest neurotoxins which can cause human mortality. However, molecular information such as genes and proteins cata...

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Autores principales: Akbar, Muhamad Afiq, Yusof, Nurul Yuziana Mohd, Sahrani, Fathul Karim, Usup, Gires, Ahmad, Asmat, Baharum, Syarul Nataqain, Muhammad, Nor Azlan Nor, Bunawan, Hamidun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8465370/
https://www.ncbi.nlm.nih.gov/pubmed/34571703
http://dx.doi.org/10.3390/biology10090826
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author Akbar, Muhamad Afiq
Yusof, Nurul Yuziana Mohd
Sahrani, Fathul Karim
Usup, Gires
Ahmad, Asmat
Baharum, Syarul Nataqain
Muhammad, Nor Azlan Nor
Bunawan, Hamidun
author_facet Akbar, Muhamad Afiq
Yusof, Nurul Yuziana Mohd
Sahrani, Fathul Karim
Usup, Gires
Ahmad, Asmat
Baharum, Syarul Nataqain
Muhammad, Nor Azlan Nor
Bunawan, Hamidun
author_sort Akbar, Muhamad Afiq
collection PubMed
description SIMPLE SUMMARY: Alexandrium minutum is one of the causing organisms for the occurrence of harmful algae bloom (HABs) in marine ecosystems. This species produces saxitoxin, one of the deadliest neurotoxins which can cause human mortality. However, molecular information such as genes and proteins catalog on this species is still lacking. Therefore, this study has successfully characterized several new molecular mechanisms regarding A. minutum environmental adaptation and saxitoxin biosynthesis. Ultimately, this study provides a valuable resource for facilitating future dinoflagellates’ molecular response to environmental changes. ABSTRACT: The toxin-producing dinoflagellate Alexandrium minutum is responsible for the outbreaks of harmful algae bloom (HABs). It is a widely distributed species and is responsible for producing paralytic shellfish poisoning toxins. However, the information associated with the environmental adaptation pathway and toxin biosynthesis in this species is still lacking. Therefore, this study focuses on the functional characterization of A. minutum unigenes obtained from transcriptome sequencing using the Illumina Hiseq 4000 sequencing platform. A total of 58,802 (47.05%) unigenes were successfully annotated using public databases such as NCBI-Nr, UniprotKB, EggNOG, KEGG, InterPRO and Gene Ontology (GO). This study has successfully identified key features that enable A. minutum to adapt to the marine environment, including several carbon metabolic pathways, assimilation of various sources of nitrogen and phosphorus. A. minutum was found to encode homologues for several proteins involved in saxitoxin biosynthesis, including the first three proteins in the pathway of saxitoxin biosynthesis, namely sxtA, sxtG and sxtB. The comprehensive transcriptome analysis presented in this study represents a valuable resource for understanding the dinoflagellates molecular metabolic model regarding nutrient acquisition and biosynthesis of saxitoxin.
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spelling pubmed-84653702021-09-27 Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey Akbar, Muhamad Afiq Yusof, Nurul Yuziana Mohd Sahrani, Fathul Karim Usup, Gires Ahmad, Asmat Baharum, Syarul Nataqain Muhammad, Nor Azlan Nor Bunawan, Hamidun Biology (Basel) Article SIMPLE SUMMARY: Alexandrium minutum is one of the causing organisms for the occurrence of harmful algae bloom (HABs) in marine ecosystems. This species produces saxitoxin, one of the deadliest neurotoxins which can cause human mortality. However, molecular information such as genes and proteins catalog on this species is still lacking. Therefore, this study has successfully characterized several new molecular mechanisms regarding A. minutum environmental adaptation and saxitoxin biosynthesis. Ultimately, this study provides a valuable resource for facilitating future dinoflagellates’ molecular response to environmental changes. ABSTRACT: The toxin-producing dinoflagellate Alexandrium minutum is responsible for the outbreaks of harmful algae bloom (HABs). It is a widely distributed species and is responsible for producing paralytic shellfish poisoning toxins. However, the information associated with the environmental adaptation pathway and toxin biosynthesis in this species is still lacking. Therefore, this study focuses on the functional characterization of A. minutum unigenes obtained from transcriptome sequencing using the Illumina Hiseq 4000 sequencing platform. A total of 58,802 (47.05%) unigenes were successfully annotated using public databases such as NCBI-Nr, UniprotKB, EggNOG, KEGG, InterPRO and Gene Ontology (GO). This study has successfully identified key features that enable A. minutum to adapt to the marine environment, including several carbon metabolic pathways, assimilation of various sources of nitrogen and phosphorus. A. minutum was found to encode homologues for several proteins involved in saxitoxin biosynthesis, including the first three proteins in the pathway of saxitoxin biosynthesis, namely sxtA, sxtG and sxtB. The comprehensive transcriptome analysis presented in this study represents a valuable resource for understanding the dinoflagellates molecular metabolic model regarding nutrient acquisition and biosynthesis of saxitoxin. MDPI 2021-08-25 /pmc/articles/PMC8465370/ /pubmed/34571703 http://dx.doi.org/10.3390/biology10090826 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Akbar, Muhamad Afiq
Yusof, Nurul Yuziana Mohd
Sahrani, Fathul Karim
Usup, Gires
Ahmad, Asmat
Baharum, Syarul Nataqain
Muhammad, Nor Azlan Nor
Bunawan, Hamidun
Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title_full Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title_fullStr Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title_full_unstemmed Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title_short Insights into Alexandrium minutum Nutrient Acquisition, Metabolism and Saxitoxin Biosynthesis through Comprehensive Transcriptome Survey
title_sort insights into alexandrium minutum nutrient acquisition, metabolism and saxitoxin biosynthesis through comprehensive transcriptome survey
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8465370/
https://www.ncbi.nlm.nih.gov/pubmed/34571703
http://dx.doi.org/10.3390/biology10090826
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