momilactone a
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2022 ◽  
Author(s):  
Dongya Wu ◽  
Yiyu Hu ◽  
Shota Akashi ◽  
Hideaki Nojiri ◽  
Chu-Yu Ye ◽  
...  

Momilactone A, an important plant labdane-related diterpenoid, functions as a phytoalexin against pathogens and an allelochemical against neighboring plants. The genes involved in biosynthesis of momilactone A are found in clusters, i.e., MABGCs (Momilactone A biosynthetic gene clusters), in the rice and barnyardgrass genomes. How MABGCs originate and evolve is still not clear. Here, we integrated results from comprehensive phylogeny and comparative genomic analyses of the core genes of MABGC-like clusters and MABGCs in 40 monocot plant genomes, providing convincing evidence for the birth and evolution of MABGCs in grass species. The MABGCs found in the PACMAD clade of the core grass lineage (including Panicoideae and Chloridoideae) originated from a MABGC-like cluster in Triticeae (BOP clade) via horizontal gene transfer (HGT) and followed by recruitment of MAS and CYP76L1 genes. The MABGCs in Oryzoideae originated from PACMAD through another HGT event and lost CYP76L1 afterwards. The Oryza MABGC and another Oryza diterpenoid cluster c2BGC are two distinct clusters, with the latter being originated from gene duplication and relocation within Oryzoideae. Further comparison of the expression patterns of the MABGC genes between rice and barnyardgrass in response to pathogen infection and allelopathy provides novel insights into the functional innovation of MABGCs in plants. Our results demonstrate HGT-mediated origination of MABGCs in grass and shed lights into the evolutionary innovation and optimization of plant biosynthetic pathways.


Agronomy ◽  
2020 ◽  
Vol 10 (7) ◽  
pp. 1032 ◽  
Author(s):  
Can Thu Huong ◽  
Truong Thi Tu Anh ◽  
Tran Dang Dat ◽  
Tran Dang Khanh ◽  
Tran Dang Xuan

Salinity stress is one of the most problematic constraints to significantly reduce rice productivity. The Saltol QTL (quantitative trait locus) has been known as one among many principal genes/QTLs responsible for salinity tolerance in rice. However, the introgression of the Saltol QTL from the donor (male) into the recipient (female) cultivars induces great recessions from the progeny generation, which results in heavy fieldwork and greater cost and time required for breeding. In this study, the F1 generation of the cross TBR1 (female cultivar, salinity tolerant) × KD18 (male cultivar, salinity susceptible) was preliminarily treated with N-methyl-N-nitrosourea (MNU) to induce the mutants M1. Results on physiological traits show that all the M2 (self-pollinated from M1) and M3 (self-pollinated from M2) individuals obtain salinity tolerant levels as the recurrent TBR1. Twelve SSR (simple sequence repeat) markers involved in the Saltol QTL (RM493, RM562, RM10694, RM10720, RM10793, RM10852, RM13197, RM201, RM149, RM508, RM587, and RM589) and other markers related to yield-contributing traits and disease resistance, as well as water and nitrogen use, have efficacy that is polymorphic. The phenotype and genotype analyses indicate that the salinity tolerant Saltol QTL, growth parameter, grain yield and quality, pest resistance, water and nitrogen use efficacy, and beneficial phytochemicals including antioxidants, momilactone A (MA) and momilactone B (MB) are uniparentally inherited from the recurrent (female) TBR1 cultivar and stabilized in the M2 and M3 generations. Further MNU applications should be examined to induce the uniparental inheritance of other salinity tolerant genes such as OsCPK17, OsRMC, OsNHX1, OsHKT1;5 to target rice cultivars. However, the mechanism of inducing this novel uniparental inheritance for salinity tolerance by MNU application needs elaboration.


2017 ◽  
Vol 45 ◽  
pp. 380-386 ◽  
Author(s):  
Mayakrishnan Prabakaran ◽  
Seung-Hyun Kim ◽  
Young-Tak Oh ◽  
Vairamuthu Raj ◽  
Ill-Min Chung

2013 ◽  
pp. 1-2
Author(s):  
Dietmar Schomburg ◽  
Ida Schomburg
Keyword(s):  

2012 ◽  
Vol 169 (15) ◽  
pp. 1471-1476 ◽  
Author(s):  
Hisashi Kato-Noguchi ◽  
Katsumi Ota ◽  
Hiroya Kujime

2012 ◽  
Vol 76 (2) ◽  
pp. 414-416 ◽  
Author(s):  
Takuya IMAI ◽  
Yuko OHASHI ◽  
Ichiro MITSUHARA ◽  
Shigemi SEO ◽  
Hiroaki TOSHIMA ◽  
...  

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