Rice Science ›› 2024, Vol. 31 ›› Issue (6): 643-658.DOI: 10.1016/j.rsci.2024.07.002
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Pei Mengtian1,#, Cao Yingying2,#, Xie Xuze3,#, Cao Ying1, Chen Jia1, Zhang Xi3, Wang Zonghua1(), Lu Guodong1(
), Zhang Shenghang2(
)
Received:
2024-06-17
Accepted:
2024-07-25
Online:
2024-11-28
Published:
2024-12-10
Contact:
Wang Zonghua (zonghuaw@163.com);
Lu Guodong (lgd@fafu.edu.cn);
Zhang Shenghang (fzzyyzsh@126.com)
About author:
#These authors contributed equally to this work
Pei Mengtian, Cao Yingying, Xie Xuze, Cao Ying, Chen Jia, Zhang Xi, Wang Zonghua, Lu Guodong, Zhang Shenghang. Synergy in Rice Immunity: Exploring Strategies of Coordinated Disease Defense Through Receptor-Like Kinases and Receptor- Like Cytoplasmic Kinases[J]. Rice Science, 2024, 31(6): 643-658.
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Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
OsSERK1 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Hu et al, |
Pi-d2 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Chen et al, et al, |
OsBISERK1 | RLK | Critical component in rice’s defense against rice blast disease | Song et al, |
OsWAK1/14/25/91/92 | RLK | Enhances plant resistance during the rice defense against rice blast disease | Li et al, |
OsBRR1 | RLK | Moderate resistance to rice blast pathogen, susceptibility increased when suppressed | Peng et al, |
OsCERK1 | RLK | Forms a crucial receptor complex on the plasma membrane, essential for activating the immune response triggered by fungal chitin; Recognizes peptidoglycan and chitin together with other receptor proteins | Akamatsu et al, |
OsWAK112d | RLK | Acts as a negative regulator, influencing rice disease resistance | Delteil et al, |
LOC_Os08g10300 | RLK | Over-expression significantly enhances rice resistance to rice blast disease | Li et al, |
SDS2 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Fan et al, |
Pi65 | RLK | Enhances the resistance to rice blast disease when over-expressed | Wang L L et al, |
OsBDR1 | RLK | Negatively regulates rice resistance to rice blast pathogen by interacting with MPK3, inhibiting jasmonic acid signaling and terpenoid biosynthesis pathways | Wang L L et al, |
OsRLK902-1/2 | RLK | Positively regulates rice resistance to rice blast by forming an immune complex with OsRLCK185 | Liang et al, |
OsRLCK57/107/ 118/176/185 | RLCK | Enhances the resistance of rice plants to rice blast pathogen | Ao et al, |
BSR1 | RLCK | Plays a vital intermediary role in immune response, boosting rice resistance against rice blast fungus | Kanda et al, |
RLCK109 | RLCK | Plays a key role in regulating cell death and defense responses, enhancing rice resistance to rice blast fungus | Zhang et al, |
RLCK188 | RLCK | Enhances plant resistance during the rice defense against rice blast disease | Xiao et al, |
OsBSK1-2 | RLCK | Reduces rice resistance to rice blast fungus | Li et al, |
Table 1. Rice receptor-like kinases (RLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to rice blast fungus.
Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
OsSERK1 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Hu et al, |
Pi-d2 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Chen et al, et al, |
OsBISERK1 | RLK | Critical component in rice’s defense against rice blast disease | Song et al, |
OsWAK1/14/25/91/92 | RLK | Enhances plant resistance during the rice defense against rice blast disease | Li et al, |
OsBRR1 | RLK | Moderate resistance to rice blast pathogen, susceptibility increased when suppressed | Peng et al, |
OsCERK1 | RLK | Forms a crucial receptor complex on the plasma membrane, essential for activating the immune response triggered by fungal chitin; Recognizes peptidoglycan and chitin together with other receptor proteins | Akamatsu et al, |
OsWAK112d | RLK | Acts as a negative regulator, influencing rice disease resistance | Delteil et al, |
LOC_Os08g10300 | RLK | Over-expression significantly enhances rice resistance to rice blast disease | Li et al, |
SDS2 | RLK | Enhances the resistance of rice plants to rice blast pathogen | Fan et al, |
Pi65 | RLK | Enhances the resistance to rice blast disease when over-expressed | Wang L L et al, |
OsBDR1 | RLK | Negatively regulates rice resistance to rice blast pathogen by interacting with MPK3, inhibiting jasmonic acid signaling and terpenoid biosynthesis pathways | Wang L L et al, |
OsRLK902-1/2 | RLK | Positively regulates rice resistance to rice blast by forming an immune complex with OsRLCK185 | Liang et al, |
OsRLCK57/107/ 118/176/185 | RLCK | Enhances the resistance of rice plants to rice blast pathogen | Ao et al, |
BSR1 | RLCK | Plays a vital intermediary role in immune response, boosting rice resistance against rice blast fungus | Kanda et al, |
RLCK109 | RLCK | Plays a key role in regulating cell death and defense responses, enhancing rice resistance to rice blast fungus | Zhang et al, |
RLCK188 | RLCK | Enhances plant resistance during the rice defense against rice blast disease | Xiao et al, |
OsBSK1-2 | RLCK | Reduces rice resistance to rice blast fungus | Li et al, |
Fig. 1. Model of rice receptor-like kinases (RLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to Magnaporthe oryzae. A, OsCERK1 binds with OsCEBiP to recognize fungal pathogen-specific molecular pattern chitin, and the binding of Pi-d2 with OsCEBiP facilitates this process. B, OsCERK1 phosphorylates OsRacGEF1, which then converts the inactive OsRac1 into its active form. The active OsRac1 transduces signals to OsRbohB, triggering an outbreak of reactive oxygen species (ROS). C, OsCERK1 transmits signals to downstream RLCKs, initiating the activation of the mitogen-activated protein kinases (MAPK) cascade, ROS bursts, expression of pathogenesis-related (PR) genes, and programmed cell death (PCD) as part of the pattern-triggered immunity immune response. D, SDS2 transfers signals to OsRLCK118 and OsRLCK176, leading to a burst of ROS, and SDS2 itself can also trigger cell death to counteract blast disease. E, Some RLKs (such as ALS1) and some RLCKs (such as OsRLCK188) are involved in salicylic acid (SA)- and jasmonic acid (JA)-mediated immune responses. F, These RLKs can enhance rice resistance to M. oryzae. G, OsCPK17 phosphorylates OsRLCK176 to stabilize it, while OsPUB12 ubiquitinates OsRLCK176, leading to its degradation. H, SDS2 interacts with and phosphorylates SPL11, which in turn ubiquitinates SDS2, leading to its degradation. I, OsBDR1 can phosphorylate MPK3 and maintain its phosphorylation level, but the functional loss of OsBDR1 significantly increases the JA levels in rice. J, OsWAK112d negatively regulates rice resistance to M. oryzae.
Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
Xa26 | RLK | Provides resistance to bacterial blight at different growth stages | Sun et al, |
Xa21 | RLK | Encodes a receptor kinase conferring broad-spectrum resistance to bacterial blight, and recognizes sulfated peptide RaxX | Chen et al, |
OsCERK1 | RLK | Recognizes bacterial pathogen-specific molecular pattern peptidoglycan; The immune response triggered by lipopolysaccharides is almost completely suppressed in the absence of OsCERK1 | Ao et al, |
OsSERK2 | RLK | Interacts with XA21, positively regulating rice resistance to bacterial blight | Chen et al, |
XIK1 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Hu et al, |
WAK25 | RLK | Weakens rice resistance to bacterial leaf blight | Harkenrider et al, |
SPL26/36/40/41 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Sathe et al, |
Xa3 | RLK | Similar to Xa26, provides resistance to bacterial blight | Liu et al, |
OsWAKL21.2 | RLK | Positively regulates rice resistance against bacterial leaf blight | Malukani et al, |
RIR1 | RLK | Makes plants more susceptible to bacterial leaf blight infection | An et al, |
RLK20/21/22 | RLK | Positively regulates rice resistance against bacterial leaf blight | Mei et al, |
PWL1 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Xu et al, |
NRRB | RLCK | Lacking NRRB shows robust resistance to bacterial leaf blight | Guo et al, |
BSR1 | RLCK | Boosts rice resistance to Xoo when over-expressed | Maeda et al, |
OsRLCK57/107/ 118/176 | RLCK | Positively regulates rice resistance against bacterial leaf blight | Zhou et al, |
rrsRLK | RLCK | Lacking rrsRLK shows robust resistance to bacterial leaf blight | Yoo et al, |
Table 2. Rice receptor-like kinases (PLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to bacterial leaf blight.
Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
Xa26 | RLK | Provides resistance to bacterial blight at different growth stages | Sun et al, |
Xa21 | RLK | Encodes a receptor kinase conferring broad-spectrum resistance to bacterial blight, and recognizes sulfated peptide RaxX | Chen et al, |
OsCERK1 | RLK | Recognizes bacterial pathogen-specific molecular pattern peptidoglycan; The immune response triggered by lipopolysaccharides is almost completely suppressed in the absence of OsCERK1 | Ao et al, |
OsSERK2 | RLK | Interacts with XA21, positively regulating rice resistance to bacterial blight | Chen et al, |
XIK1 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Hu et al, |
WAK25 | RLK | Weakens rice resistance to bacterial leaf blight | Harkenrider et al, |
SPL26/36/40/41 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Sathe et al, |
Xa3 | RLK | Similar to Xa26, provides resistance to bacterial blight | Liu et al, |
OsWAKL21.2 | RLK | Positively regulates rice resistance against bacterial leaf blight | Malukani et al, |
RIR1 | RLK | Makes plants more susceptible to bacterial leaf blight infection | An et al, |
RLK20/21/22 | RLK | Positively regulates rice resistance against bacterial leaf blight | Mei et al, |
PWL1 | RLK | Negatively regulates rice resistance to bacterial leaf blight | Xu et al, |
NRRB | RLCK | Lacking NRRB shows robust resistance to bacterial leaf blight | Guo et al, |
BSR1 | RLCK | Boosts rice resistance to Xoo when over-expressed | Maeda et al, |
OsRLCK57/107/ 118/176 | RLCK | Positively regulates rice resistance against bacterial leaf blight | Zhou et al, |
rrsRLK | RLCK | Lacking rrsRLK shows robust resistance to bacterial leaf blight | Yoo et al, |
Fig. 2. Model of rice receptor-like kinases (RLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to Xanthomonas oryza pv. oryza (Xoo). A, With the help of OsLYP4 and OsLYP6, OsCERK1 recognizes the bacterial pathogen-specific molecular pattern (PAMP) peptidoglycan (PGN). B, Assisted by OsFLS2, OsSERK2 recognizes the bacterial PAMP flg22 (flagellin 22). C, OsCERK1 and OsSERK2 transmit signals to OsRLCK185 and OsRLCK176, activating the mitogen-activated protein kinases (MAPK) cascade and triggering a burst of reactive oxygen species (ROS). D, XA21 can recognize a sulfated microbial peptide RaxX (required for activation of Xa21-mediated immunity X) secreted by the bacterium causing bacterial leaf blight, subsequently promoting the expression of pathogenesis-related (PR)-genes. It can also interact with OsSERK2 for mutual phosphorylation to enhance resistance to Xoo. E, After XA21 transmits signals to the auxiliary protein XinN1, XinN1 can induce an ROS burst and an increase in calcium ion (Ca2+) concentration, and it can also promote the expression of OsSERKs and OsRLCKs. F, These RLKs and RLCKs have been reported to enhance rice’s resistance to Xoo. G, These RLKs have been reported to act as negative regulators in the immune response against Xoo. H, NRRB and rrsRLK encode RLCKs, which also act as negative regulator in the immune response against Xoo.
Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
WAK25 | RLK | Over-expression weakens rice resistance to necrotrophic fungal pathogens like sheath blight, increasing susceptibility | Harkenrider et al, |
OsSOBIR1 | RLK | Interaction between OsSOBIR1 and the receptor-like protein OsRLP1 enhances rice resistance to rice black-streaked dwarf virus | Zhang et al, |
WAK91 | RLK | Specific mutations enhance rice resistance to sheath blight, holding potential significance for reducing yield losses | Al-Bader et al, |
BSR1 | RLCK | Over-expression significantly enhances rice resistance to sheath blight | Maeda et al, |
OsRLCK5 | RLCK | Interacts with rice glutaredoxin GRX20 and participates in ascorbate-glutathione cycle to enhance rice defense against reactive oxygen species, augmenting resistance to sheath blight | Wang et al, |
Table 3. Rice receptor-like kinases (RLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to sheath blight and rice black- streaked dwarf virus.
Gene name | RLK/RLCK | Function | Reference |
---|---|---|---|
WAK25 | RLK | Over-expression weakens rice resistance to necrotrophic fungal pathogens like sheath blight, increasing susceptibility | Harkenrider et al, |
OsSOBIR1 | RLK | Interaction between OsSOBIR1 and the receptor-like protein OsRLP1 enhances rice resistance to rice black-streaked dwarf virus | Zhang et al, |
WAK91 | RLK | Specific mutations enhance rice resistance to sheath blight, holding potential significance for reducing yield losses | Al-Bader et al, |
BSR1 | RLCK | Over-expression significantly enhances rice resistance to sheath blight | Maeda et al, |
OsRLCK5 | RLCK | Interacts with rice glutaredoxin GRX20 and participates in ascorbate-glutathione cycle to enhance rice defense against reactive oxygen species, augmenting resistance to sheath blight | Wang et al, |
Fig. 3. Model of rice receptor-like kinases (RLKs) and receptor-like cytoplasmic kinases (RLCKs) in resistance to Rhizoctonia solani and rice black-streaked dwarf virus. A, OsRLCK5 and BSR1 can enhance rice’s resistance to R. solani, with OsRLCK5 increasing reactive oxygen species (ROS) levels. B, WAK25 and WAK91 negatively regulate rice’s resistance to R. solani. C, OsSOBIR1, assisted by OsRLP1, can enhance rice’s resistance to rice black-streaked dwarf virus through the activation of mitogen-activated protein kinase (MAPK) and the transcription of pattern-triggered immunity (PTI)-related genes.
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