scholarly journals Comparative Genomics of Spatholobus suberectus and Insight Into Flavonoid Biosynthesis

2020 ◽  
Vol 11 ◽  
Author(s):  
Shuangshuang Qin ◽  
Kunhua Wei ◽  
Zhanhu Cui ◽  
Ying Liang ◽  
Mingjie Li ◽  
...  
2021 ◽  
Vol 12 ◽  
Author(s):  
Ola Alessa ◽  
Yoshitoshi Ogura ◽  
Yoshiko Fujitani ◽  
Hideto Takami ◽  
Tetsuya Hayashi ◽  
...  

The pink-pigmented facultative methylotrophs (PPFMs), a major bacterial group found in the plant phyllosphere, comprise two genera: Methylobacterium and Methylorubrum. They have been separated into three major clades: A, B (Methylorubrum), and C. Within these genera, however, some species lack either pigmentation or methylotrophy, which raises the question of what actually defines the PPFMs. The present study employed a comprehensive comparative genomics approach to reveal the phylogenetic relationship among the PPFMs and to explain the genotypic differences that confer their different phenotypes. We newly sequenced the genomes of 29 relevant-type strains to complete a dataset for almost all validly published species in the genera. Through comparative analysis, we revealed that methylotrophy, nitrate utilization, and anoxygenic photosynthesis are hallmarks differentiating the PPFMs from the other Methylobacteriaceae. The Methylobacterium species in clade A, including the type species Methylobacterium organophilum, were phylogenetically classified into six subclades, each possessing relatively high genomic homology and shared phenotypic characteristics. One of these subclades is phylogenetically close to Methylorubrum species; this finding led us to reunite the two genera into a single genus Methylobacterium. Clade C, meanwhile, is composed of phylogenetically distinct species that share relatively higher percent G+C content and larger genome sizes, including larger numbers of secondary metabolite clusters. Most species of clade C and some of clade A have the glutathione-dependent pathway for formaldehyde oxidation in addition to the H4MPT pathway. Some species cannot utilize methanol due to their lack of MxaF-type methanol dehydrogenase (MDH), but most harbor an XoxF-type MDH that enables growth on methanol in the presence of lanthanum. The genomes of PPFMs encode between two and seven (average 3.7) genes for pyrroloquinoline quinone-dependent alcohol dehydrogenases, and their phylogeny is distinctly correlated with their genomic phylogeny. All PPFMs were capable of synthesizing auxin and did not induce any immune response in rice cells. Other phenotypes including sugar utilization, antibiotic resistance, and antifungal activity correlated with their phylogenetic relationship. This study provides the first inclusive genotypic insight into the phylogeny and phenotypes of PPFMs.


mBio ◽  
2021 ◽  
Author(s):  
Samantha C. Waterworth ◽  
Shirley Parker-Nance ◽  
Jason C. Kwan ◽  
Rosemary A. Dorrington

Marine sponges often form symbiotic relationships with bacteria that fulfil a specific need within the sponge holobiont, and these symbionts are often conserved within a narrow range of related taxa. To date, there exist only three known bacterial taxa ( Entoporibacteria , SAUL , and Tethybacterales ) that are globally distributed and found in a broad range of sponge hosts, and little is known about the latter two.


2021 ◽  
Vol 7 (1) ◽  
Author(s):  
Chuying Huang ◽  
Hongqin Ying ◽  
Xibiao Yang ◽  
Yuan Gao ◽  
Tuo Li ◽  
...  

AbstractCardamine enshiensis is a well-known selenium (Se)-hyperaccumulating plant. Se is an essential trace element associated with many health benefits. Despite its critical importance, genomic information of this species is limited. Here, we report a chromosome-level genome assembly of C. enshiensis, which consists of 443.4 Mb in 16 chromosomes with a scaffold N50 of 24 Mb. To elucidate the mechanism of Se tolerance and hyperaccumulation in C. enshiensis, we generated and analyzed a dataset encompassing genomes, transcriptomes, and metabolomes. The results reveal that flavonoid, glutathione, and lignin biosynthetic pathways may play important roles in protecting C. enshiensis from stress induced by Se. Hi-C analysis of chromatin interaction patterns showed that the chromatin of C. enshiensis is partitioned into A and B compartments, and strong interactions between the two telomeres of each chromosome were correlated with histone modifications, epigenetic markers, DNA methylation, and RNA abundance. Se supplementation could affect the 3D chromatin architecture of C. enshiensis at the compartment level. Genes with compartment changes after Se treatment were involved in selenocompound metabolism, and genes in regions with topologically associated domain insulation participated in cellular responses to Se, Se binding, and flavonoid biosynthesis. This multiomics research provides molecular insight into the mechanism underlying Se tolerance and hyperaccumulation in C. enshiensis.


2012 ◽  
Vol 109 (14) ◽  
pp. 5458-5463 ◽  
Author(s):  
E. Fernandez-Fueyo ◽  
F. J. Ruiz-Duenas ◽  
P. Ferreira ◽  
D. Floudas ◽  
D. S. Hibbett ◽  
...  

2017 ◽  
Vol 65 (26) ◽  
pp. 5287-5298 ◽  
Author(s):  
Sangkyu Park ◽  
Da-Hye Kim ◽  
Jong-Yeol Lee ◽  
Sun-Hwa Ha ◽  
Sun-Hyung Lim

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