| Literature DB >> 30405668 |
Luis Buendia1, Ariane Girardin1, Tongming Wang1, Ludovic Cottret1, Benoit Lefebvre1.
Abstract
Members of plant specific families of receptor-like kinases (RLKs) and receptor-like proteins (R<span class="Disease">LPs), <span class="Chemical">containing 3 extracellular LysMs have been shown to directly bind and/or to be involved in perception of lipo-chitooligosaccharides (LCO), chitooligosaccharides (CO), and peptidoglycan (PGN), three types of GlcNAc-containing molecules produced by microorganisms. These receptors are involved in microorganism perception by plants and can activate different plant responses leading either to symbiosis establishment or to defense responses against pathogens. LysM-RLK/Ps belong to multigenic families. Here, we provide a phylogeny of these families in eight plant species, including dicotyledons and monocotyledons, and we discuss known or putative biological roles of the members in each of the identified phylogenetic groups. We also report and discuss known biochemical properties of the LysM-RLK/Ps.Entities:
Keywords: MAMP; defense; receptor ligand interaction; symbiosis; symbiotic signal
Year: 2018 PMID: 30405668 PMCID: PMC6207691 DOI: 10.3389/fpls.2018.01531
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
FIGURE 1LysM-RLK and LysM-RLP structure, synthesis and maturation. (A) Receptor-like kinases (RLKs) are produced by ribosomes associated with the ER. The ECR that is preceded by a SP is translocated into the ER lumen during translation until the TM (brown) is inserted in the lipid bilayer. The ICR is then produced in the cytosol. SPs are cleaved in the ER and the mature proteins are transported through the secretory pathway to their final destinations, mainly the plasma membrane. GPI anchored receptor-like proteins (RLPs) are also produced by ribosomes associated with the ER. After translocation and insertion in the membrane, the SP is cleaved and the ECR is transferred to a GPI anchor. The mature proteins are then transported to their final destinations. (B) LysM-RLKs are composed of 3 lysin motifs (LysM, orange) in the ECR, a TM (brown) and an ICR bearing an active kinase (beige, LYK subfamily) or an inactive kinase (gray, LYR subfamily). LysM-RLPs (LYMs) are composed of 3 LysMs in the ECR attached to a GPI anchor. (C,D) AtCERK1 3D structure resolved by Liu T. et al. (2012). Images were obtained using the pdb file 4EBY: α-helices are indicated in pink, β-strands are indicated in yellow and C residues are indicated in green. (C) Orientation of AtCERK1 ECR highlighting the 3 LysMs (circled) packed together. (D) Orientation of AtCERK1 ECR highlighting the C residues involved in disulfide bridges.
FIGURE 2Peptidoglycan (PGN), chitooligosaccharides (CO4 and CO8) and lipo-chitooligosaccharide (LCO-IV) schematic structures. Schematic structures of various N-acetyl glucosamine (GlcNAc) containing molecules produced by microorganisms. GlcNAc residues are associated to N-acetylmuramic acid (MurNAc) in PGN and to lipid in LCOs.
FIGURE 3PhyML phylogenetic tree of the LYMs. Different phylogenetic groups are shown in different colors. ECRs of 3 LYR proteins were used as outgroup sequences. The sequences corresponding to the LYM proteins were aligned with Mafft (v7.271; Katoh et al., 2002) with the following parameters: maxiterate = 1000, retree = 1, genafpair = true. The best evolutionary model fitting the alignment was identified using ProtTest (v2.4). This best model was: WAG + I + G, alpha = 2.69, p-inv = 0.05. The phylogenetic tree was computed using a maximum-likelihood method with phyml (v20130805; Guindon et al., 2010). The branch confidence was evaluated using the Approximate Likelihood-Ratio Test (Anisimova and Gascuel, 2006). Finally, the tree was drawn with Itol v3 (Letunic and Bork, 2016).
FIGURE 4PhyML phylogenetic tree of the LYRs. Different phylogenetic groups are shown in different colors. Three LYK proteins were used as outgroup sequences. The same protocol as for the LYM family tree (Figure 3) was used, except that the best model fitting the alignment was LG + I + G, alpha = 1.71, p-inv = 0.06.
FIGURE 6PhyML phylogenetic tree of the LYKs. Different phylogenetic groups are shown in different colors. Three LYR proteins were used as outgroup sequences. The same protocol as for the LYM family tree (Figure 3) was used, except that the best model fitting the alignment was JTT + I + G, alpha = 1.32, p-inv = 0.1.
LysM-RLPs belonging to the phylogenetic groups LYMI or LYMII found in the 8 species analyzed.
| LYMI | Medtr3g072410 | Lj0g3v0219829 | Prupe.1G500000 | At1g21880 | Brara.F01580 | Solyc11g012870 | Bradi3g57756 | Os06g10660 |
| LYM1 | PpLYM1 | AtLYM1 | SlLYM1 | BdLYM1 | OsLYP6 | |||
| Brara.H02266 | Bradi1g46200 | Os02g53000 | ||||||
| BdLYM3 | OsLYP5 | |||||||
| At1g77630 | Brara.B02278 | Os09g27890 | ||||||
| AtLYM3 | OsLYP4 | |||||||
| Prupe.5G220900 | Solyc03g119550 | |||||||
| PpLYM3 | SlLYM3 | |||||||
| LYMII | Medtr4g094730 | Lj4g3v0200090 | Prupe.8G176700 | At2g17120 | Brara.G00290 | Solyc01g112080 | Bradi1g76177 | Os03g04110 |
| LYM2 | PpLYM2 | AtLYM2 | SlLYM2 | BdLYM2 | OsCEBiP | |||
| Bradi4g37090 | Os09g37600 | |||||||
| BdLYM4 | OsLYP3 |
LysM-RLKs belonging to the phylogenetic groups LYRI, LYRII, LYRIII or LYRIV found in the 8 species analyzed.
| LYRI | A | Medtr5g019040 | Lj2g3v1828350 | Prupe.7G147300 | Solyc02g065520 | Bradi1g69290 | Os03G13080 | ||
| MtNFP | LjNFR5 | PpLYR1 | SlLYK10 | Bd LYR1 | OsNFR5 | ||||
| Medtr8g078300 | Lj4g3v0912440 | ||||||||
| MtLYR1 | LjLYS11 | ||||||||
| B | Medtr5G042440 | ∗ | Prupe.1G027000 | Solyc09g083210 | Bradi3g51790 | Os02G45750 | |||
| MtLYR8 | PpLYR2 | SlLYK9 | Bd LYR2 | ||||||
| LYRII | A | Medtr7g029650 | Lj1g3v3834250 | Prupe.3G303700 | At3g01840 | Brara.E03634 | Solyc02g094010 | ||
| MtLYR10 | LjLYS16 | PpLYR6 | AtLYK2 | SlLYK2 | |||||
| B | Medtr4g058570 | Lj3g3v3082380 | Prupe.6G104800 | Solyc11g069630 | |||||
| MtLYR9 | LjLYS15 | PpLYR7 | SlLYK15 | ||||||
| LYRIII | A | Medtr5g019050 | Lj2g3v1828320 | Prupe.7G147600 | At2g23770 | Brara.D01416 | Solyc02g089900 | Bradi4g16350 | Os11G35330 |
| MtLYR3 | LjLYS12 | PpLYR3 | AtLYK4 | SlLYK4 | Bd LYR4 | OsLYK6 | |||
| B | Medtr1g021845 | Lj0g3v0145339 | Prupe.7G147500 | Solyc02g089920 | |||||
| MtLYR2 | PpLYR4 | SlLYK7 | |||||||
| Solyc12g089020 | |||||||||
| SlLYK6 | |||||||||
| C | Medtr5g085790 | Lj2g3v2899910 | At2g33580 | Brara.D02042 | Bradi3g06770 | Os06G41960 | |||
| MtLYR4 | LjLYS13 | AtLYK5 | Bd LYR3 | OsLYK3 | |||||
| Medtr3g080170 | Lj2g3v2899900 | Os06G41980 | |||||||
| MtLYR7 | LjLYS14 | OsLYK2 | |||||||
| Os02G09960 | |||||||||
| OsLYK4 | |||||||||
| LYRIV | Medtr7g079350 | ∗ | |||||||
| MtLYR5 | |||||||||
| Medtr7g079320 | Lj1g3v2808030 | Prupe.6G357200 | |||||||
| MtLYR6 | LjLYS20 | PpLYR5 |
FIGURE 5Syntenic localization of the members of the phylogenetic groups LYRIA (red), LYRIIIB (pink) and LYRIIIA (blue). The orthologs are represented by similar color in the various genomes. Synteny was built by using the genome of Vitis vinifera as reference. On the left, the phylogenetic tree of the species is that of Phytozome v10.
LysM-RLKs belonging to the phylogenetic groups LYKI, LYKII or LYKIII found in the 8 species analyzed.
| LYKI | Medtr5g086540 | Lj2g3v2904640 | ||||||
| LYK1 | LjLYS2 | |||||||
| Medtr5g086120 | ||||||||
| LYK4 | ||||||||
| Medtr5g086090 | ||||||||
| LYK5 | ||||||||
| Medtr5g086040 | Lj2g3v2904610 | |||||||
| LYK6 | LjLYS1 | |||||||
| Medtr5g086030 | ||||||||
| LYK7 | ||||||||
| Medtr5g086310 Medtr5g086330 | ||||||||
| LYK2 | ||||||||
| Medtr5g086130 | Lj2g3v2904690 | Solyc01g098410 | ||||||
| LYK3 | LjNFR1 | SlLYK13 | ||||||
| Medtr3g080050 | Lj6g3v1055580 | Prupe.3G213100 | Solyc07g049180 | |||||
| LYK9 | LjLYS6 | PpLYK2 | SlLYK1/SlBti9 | |||||
| Medtr2g024290 | Lj6g3v1812110 | Prupe.4G016100 | Solyc02g081050 | Bradi3g41590 | Os08g42580 | |||
| LYK8 | LjLYS7 | PpLYK1 | SlLYK12 | BdLYK1 | OsCERK1 | |||
| Solyc02g081040 | Os09g33630 | |||||||
| SlLYK11 | ||||||||
| At3g21630 | Brara.E02055 | |||||||
| AtLYK1/AtCERK1 | ||||||||
| LYKII | Medtr5g033490 | Lj2g3v1415410 | Prupe.5G168000 | Solyc06g069610 | Bradi2g40627 | Os01G36550 | ||
| LYK10 | LjLYS3/EPR3 | PpLYK3 | SlLYK14 | BdLYK2 | OsLYK1 | |||
| Prupe.1G247900 | ||||||||
| PpLYK4 | ||||||||
| LYKIII | Medtr8g014500 | Lj3g3v2318170 | Prupe.3G058700 | At1g51940 | Brara.H00193 | Solyc03g121050 | Bradi2g49400 | Os01G53840 |
| LYK11 | LjLYS5 | PpLYK5 | AtLYK3 | SlLYK3 | BdLYK3 | |||
| Lj3g3v0290100 | Brara.F00223 | |||||||
| LjLYS4 |
FIGURE 7Partial amino acid sequence alignment of members of the phylogenetic group LYKI. The YAQ/R motif present in the kinase domain is boxed in black.
FIGURE 8LysM-RLK and/or LysM-RLP heterodimers. Known or hypothetical heterodimers involved in defense or symbiosis. Schematic representation of the LysM-RLKs/Ps as in Figure 1. LysM-RLKs with beige ICRs are LYKs (with active kinase domains), LysM-RLKs with gray ICRs are LYRs (with inactive kinase domains). Several models have been proposed in the literature: OsCEBIP might from a dimer that binds CO8 and interacts with OsCERK1 for signaling; AtLYK5 and AtCERK1 might both bind CO8; LjNFR5 and LjNFR1 might both bind LCOs. SlLYK10 and OsCERK1 might interact with yet unidentified partners for perception of Myc-factors.
Known or hypothetical LysM-RLK/P heterodimers involved in defense or symbiosis.
| Genetic interaction | Reference | Physical interaction | Reference | |
|---|---|---|---|---|
| AtLYM3/AtCERK1 | X | |||
| AtLYM1/AtCERK1 | X | |||
| AtLYK4/AtCERK1 | X | |||
| AtLYK5/AtCERK1 | X | X | ||
| OsLYP4/OsCERK1 | X | X | ||
| OsLYP6/OsCERK1 | X | X | ||
| OsCEBIP/OsCERK1 | X | X | ||
| MtNFP/MtLYK3 | X | X | ||
| LjNFR5/LJNFR1 | X | X | ||
| MtLYR3/MtLYK3 | X |