Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp

Abstract Cyanobacteria are photosynthetic microorganisms with significant biotechnological potential owing to their ability to produce valuable biopolymers such as polyhydroxybutyrate (PHB). This study focuses on PHB production in the cyanobacteria, Limnospira fusiformis NRMCF6962 and Spirulina majo...

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Main Authors: Fayaazuddin Thajuddin, Asraf Sithikka Rasheed, Prakash Palanivel, Shakena Fathima Thajuddin, Thajuddin Nooruddin, Dhanasekaran Dharumadurai
Format: Article
Language:English
Published: Nature Portfolio 2025-07-01
Series:Scientific Reports
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Online Access:https://doi.org/10.1038/s41598-025-04501-7
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author Fayaazuddin Thajuddin
Asraf Sithikka Rasheed
Prakash Palanivel
Shakena Fathima Thajuddin
Thajuddin Nooruddin
Dhanasekaran Dharumadurai
author_facet Fayaazuddin Thajuddin
Asraf Sithikka Rasheed
Prakash Palanivel
Shakena Fathima Thajuddin
Thajuddin Nooruddin
Dhanasekaran Dharumadurai
author_sort Fayaazuddin Thajuddin
collection DOAJ
description Abstract Cyanobacteria are photosynthetic microorganisms with significant biotechnological potential owing to their ability to produce valuable biopolymers such as polyhydroxybutyrate (PHB). This study focuses on PHB production in the cyanobacteria, Limnospira fusiformis NRMCF6962 and Spirulina major NRMCF6963, under nitrogen-limited conditions. Qualitative and quantitative analyses confirmed PHB accumulation in L. fusiformis and its absence in S. major. Whole-genome sequencing of L. fusiformis revealed 5,177 coding sequences. Comparative genomic analysis of 26 cyanobacterial strains belonging to genera of Spirulina, Arthrospira, and Limnospira revealed significant variations in gene content, particularly within PHB biosynthesis pathways. Functional annotation revealed that PHB metabolism is absent in S. major, which instead relies on alternative stress-response pathways including chlorophyll degradation, selenocysteine metabolism and xanthine metabolism. Phylogenomic and metabolic pathway analyses suggests an evolutionary adaptation among the three genera of Oscillatoriales, with S. major as a divergent species from PHB-producing descendants. Orthologous Average Nucleotide Identity and digital DNA-DNA hybridization validated the taxonomic distinction between two major clades within strains. Metabolic insights revealed the critical role of PHB and alternative metabolic pathways in cyanobacteria for stress adaptation. This research advances the understanding of PHB metabolism and evolutionary mechanisms in cyanobacteria, underscoring the potential for cyanobacterial strain improvement and scale-up in bioprocess industry.
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spelling doaj-art-163fd6e0dfdc4769ab3a5bfc39b99d0c2025-08-20T04:01:51ZengNature PortfolioScientific Reports2045-23222025-07-0115111310.1038/s41598-025-04501-7Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira sppFayaazuddin Thajuddin0Asraf Sithikka Rasheed1Prakash Palanivel2Shakena Fathima Thajuddin3Thajuddin Nooruddin4Dhanasekaran Dharumadurai5National Repository for Microalgae and Cyanobacteria – Freshwater (NRMC-F) (Sponsored by the DBT, Govt. of India), Bharathidasan University, Tamil NaduSchool of Life Sciences, Bharathidasan University, Tamil NaduNational Repository for Microalgae and Cyanobacteria – Freshwater (NRMC-F) (Sponsored by the DBT, Govt. of India), Bharathidasan University, Tamil NaduDepartment of Microbiology, Jamal Mohammed College, Tamil NaduNational Repository for Microalgae and Cyanobacteria – Freshwater (NRMC-F) (Sponsored by the DBT, Govt. of India), Bharathidasan University, Tamil NaduNational Repository for Microalgae and Cyanobacteria – Freshwater (NRMC-F) (Sponsored by the DBT, Govt. of India), Bharathidasan University, Tamil NaduAbstract Cyanobacteria are photosynthetic microorganisms with significant biotechnological potential owing to their ability to produce valuable biopolymers such as polyhydroxybutyrate (PHB). This study focuses on PHB production in the cyanobacteria, Limnospira fusiformis NRMCF6962 and Spirulina major NRMCF6963, under nitrogen-limited conditions. Qualitative and quantitative analyses confirmed PHB accumulation in L. fusiformis and its absence in S. major. Whole-genome sequencing of L. fusiformis revealed 5,177 coding sequences. Comparative genomic analysis of 26 cyanobacterial strains belonging to genera of Spirulina, Arthrospira, and Limnospira revealed significant variations in gene content, particularly within PHB biosynthesis pathways. Functional annotation revealed that PHB metabolism is absent in S. major, which instead relies on alternative stress-response pathways including chlorophyll degradation, selenocysteine metabolism and xanthine metabolism. Phylogenomic and metabolic pathway analyses suggests an evolutionary adaptation among the three genera of Oscillatoriales, with S. major as a divergent species from PHB-producing descendants. Orthologous Average Nucleotide Identity and digital DNA-DNA hybridization validated the taxonomic distinction between two major clades within strains. Metabolic insights revealed the critical role of PHB and alternative metabolic pathways in cyanobacteria for stress adaptation. This research advances the understanding of PHB metabolism and evolutionary mechanisms in cyanobacteria, underscoring the potential for cyanobacterial strain improvement and scale-up in bioprocess industry.https://doi.org/10.1038/s41598-025-04501-7SpirulinaArthrospiraLimnospiraPolyhydroxybutyrate biosynthesisPhylogenomicsChlorophyll degradation
spellingShingle Fayaazuddin Thajuddin
Asraf Sithikka Rasheed
Prakash Palanivel
Shakena Fathima Thajuddin
Thajuddin Nooruddin
Dhanasekaran Dharumadurai
Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
Scientific Reports
Spirulina
Arthrospira
Limnospira
Polyhydroxybutyrate biosynthesis
Phylogenomics
Chlorophyll degradation
title Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
title_full Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
title_fullStr Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
title_full_unstemmed Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
title_short Evolutionary adaptations of cyanobacterial polyhydroxybutyrate (PHB) biosynthesis and metabolic pathways in Spirulina, Arthrospira, and Limnospira spp
title_sort evolutionary adaptations of cyanobacterial polyhydroxybutyrate phb biosynthesis and metabolic pathways in spirulina arthrospira and limnospira spp
topic Spirulina
Arthrospira
Limnospira
Polyhydroxybutyrate biosynthesis
Phylogenomics
Chlorophyll degradation
url https://doi.org/10.1038/s41598-025-04501-7
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