» Articles » PMID: 31990988

Structural Evolution Drives Diversification of the Large LRR-RLK Gene Family

Overview
Journal New Phytol
Specialty Biology
Date 2020 Jan 29
PMID 31990988
Citations 31
Authors
Affiliations
Soon will be listed here.
Abstract

●Cells are continuously exposed to chemical signals that they must discriminate between and respond to appropriately. In embryophytes, the leucine-rich repeat receptor-like kinases (LRR-RLKs) are signal receptors critical in development and defense. LRR-RLKs have diversified to hundreds of genes in many plant genomes. Although intensively studied, a well-resolved LRR-RLK gene tree has remained elusive. ●To resolve the LRR-RLK gene tree, we developed an improved gene discovery method based on iterative hidden Markov model searching and phylogenetic inference. We used this method to infer complete gene trees for each of the LRR-RLK subclades and reconstructed the deepest nodes of the full gene family. ●We discovered that the LRR-RLK gene family is even larger than previously thought, and that protein domain gains and losses are prevalent. These structural modifications, some of which likely predate embryophyte diversification, led to misclassification of some LRR-RLK variants as members of other gene families. Our work corrects this misclassification. ●Our results reveal ongoing structural evolution generating novel LRR-RLK genes. These new genes are raw material for the diversification of signaling in development and defense. Our methods also enable phylogenetic reconstruction in any large gene family.

Citing Articles

Identification of the BBX gene family in blueberry at different chromosome ploidy levels and fruit development and response under stress.

Xue Y, Chen J, Hao J, Bao X, Kuang L, Zhang D BMC Genomics. 2025; 26(1):100.

PMID: 39901109 PMC: 11792412. DOI: 10.1186/s12864-025-11273-x.


Salicylic Acid-Induced Expression Profiles of LRR and LRR-RLK Candidate Genes Modulate Resistance in Blackgram and Its Two Wild Non-Progenitors.

Shukla M, Kaundal P, Purwar S, Kumar M, Maurya C, Chirag Plants (Basel). 2025; 13(24.

PMID: 39771299 PMC: 11678391. DOI: 10.3390/plants13243601.


Origin and evolution of auxin-mediated acid growth.

Zeng H, Deng S, Jin C, Shang Z, Chang L, Wang J Proc Natl Acad Sci U S A. 2024; 121(51):e2412493121.

PMID: 39656208 PMC: 11665922. DOI: 10.1073/pnas.2412493121.


involved in the abscisic acid signaling pathway to regulate the early growth and development of .

Xie X, Wei L, Han H, Jing B, Liu Y, Zhou Y PeerJ. 2024; 12:e18460.

PMID: 39619177 PMC: 11606324. DOI: 10.7717/peerj.18460.


Pathogen elicitor peptide (pep), systemin, and their receptors in tomato: sequence analysis sheds light on standing disagreements about biotic stress signaling components.

Zelman A, Ma Y, Berkowitz G BMC Plant Biol. 2024; 24(1):728.

PMID: 39080569 PMC: 11289955. DOI: 10.1186/s12870-024-05403-y.


References
1.
Horiike T, Minai R, Miyata D, Nakamura Y, Tateno Y . Ortholog-Finder: A Tool for Constructing an Ortholog Data Set. Genome Biol Evol. 2016; 8(2):446-57. PMC: 4779612. DOI: 10.1093/gbe/evw005. View

2.
Fischer I, Dievart A, Droc G, Dufayard J, Chantret N . Evolutionary Dynamics of the Leucine-Rich Repeat Receptor-Like Kinase (LRR-RLK) Subfamily in Angiosperms. Plant Physiol. 2016; 170(3):1595-610. PMC: 4775120. DOI: 10.1104/pp.15.01470. View

3.
Sun X, Wang G . Genome-wide identification, characterization and phylogenetic analysis of the rice LRR-kinases. PLoS One. 2011; 6(3):e16079. PMC: 3050792. DOI: 10.1371/journal.pone.0016079. View

4.
Feng W, Kita D, Peaucelle A, Cartwright H, Doan V, Duan Q . The FERONIA Receptor Kinase Maintains Cell-Wall Integrity during Salt Stress through Ca Signaling. Curr Biol. 2018; 28(5):666-675.e5. PMC: 5894116. DOI: 10.1016/j.cub.2018.01.023. View

5.
Dress A, Flamm C, Fritzsch G, Grunewald S, Kruspe M, Prohaska S . Noisy: identification of problematic columns in multiple sequence alignments. Algorithms Mol Biol. 2008; 3:7. PMC: 2464588. DOI: 10.1186/1748-7188-3-7. View