MORC Domain Definition and Evolutionary Analysis of the MORC Gene Family in Green Plants
Wei Dong1, Alessandro Vannozzi2, Fei Chen1
1College of Life Science, State Key Laboratory of Ecological Pest Control for Fujian and Taiwan Crops, Key Laboratory of Ministry of Education for Genetics, Breeding and Multiple Utilization of Crops, Fujian Provincial Key Laboratory of Haixia Applied Plant Systems Biology, Fujian Agriculture and Forestry University, Fuzhou, China.
Abstract:
Microrchidia (MORC) proteins have been described as epigenetic regulators and plant immune mediators in Arabidopsis. Typically, plant and animal MORC proteins contain a hallmark GHKL-type (Gyrase, Hsp90, Histidine kinase, MutL) ATPase domain in their N-terminus. Here, 356 and 83 MORC orthologues were identified in 60 plant and 27 animal genomes. Large-scale MORC sequence analyses revealed the presence of a highly conserved motif composition that defined as the MORC domain. The MORC domain was present in both plants and animals, indicating that it originated in the common ancestor before the divergence of plants and animals. Phylogenetic analyses showed that MORC genes in both plant and animal lineages were clearly classified into two major groups, named Plants-Group I, Plants-Group II and Animals-Group I, Animals-Group II, respectively. Further analyses of MORC genes in green plants uncovered that Group I can be subdivided into Group I-1 and Group I-2. Group I-1 only contains seed plant genes, suggesting that Group I-1 and I-2 divergence occurred at least before the emergence of spermatophytes. Group I-2 and Group II have undergone several gene duplications, resulting in the expansion of MORC gene family in angiosperms. Additionally, MORC gene expression analyses in Arabidopsis, soybean, and rice revealed a higher expression level in reproductive tissues compared with other organs, and showed divergent expression patterns for several paralogous gene pairs. Our studies offered new insights into the origins, phylogenetic relationships, and expressional patterns of MORC family members in green plants, which would help to further reveal their functions as plant epigenetic regulators.
Insights
Microrchidia (MORC) proteins, key epigenetic regulators, have ancient origins in common ancestors of plants and animals. Their gene family expanded in seed plants, with expression concentrated in reproductive tissues.
Area of Science:
- Molecular Biology
- Genomics
- Evolutionary Biology
Background:
- Microrchidia (MORC) proteins function as epigenetic regulators and immune mediators in plants.
- Plant and animal MORC proteins share a conserved N-terminal GHKL-type ATPase domain.
Purpose of the Study:
- To identify and analyze MORC orthologues across plant and animal genomes.
- To investigate the evolutionary origins and phylogenetic relationships of the MORC gene family.
- To examine the expression patterns of MORC genes in key plant species.
Main Methods:
- Genome-wide identification of MORC orthologues in 60 plant and 27 animal species.
- Sequence analysis to define the conserved MORC domain.
- Phylogenetic analyses to classify MORC genes into distinct groups.
- Gene expression profiling in Arabidopsis, soybean, and rice.
Main Results:
- Identified 356 plant and 83 animal MORC orthologues.
- The conserved MORC domain is present in both plants and animals, indicating ancient origins.
- MORC genes cluster into two major clades in both plants and animals, with further subdivision in plants.
- MORC gene family expansion observed in angiosperms due to duplications.
- MORC genes show higher expression in reproductive tissues and exhibit divergent expression in paralogous pairs.
Conclusions:
- MORC proteins originated in the common ancestor of plants and animals.
- Phylogenetic analysis reveals distinct evolutionary trajectories and diversification within plant MORC genes.
- Gene duplications contributed to MORC family expansion in angiosperms.
- Differential expression patterns suggest specialized roles for MORC members in plant reproductive development.
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