Small Peptides: Orchestrators of Plant Growth and Developmental Processes
Abstract
:1. Introduction
2. Classification and Identification of SPs
2.1. Classification Based on Origin
- Peptides incorporating posttranslational modifications (PTMs), such as proline hydroxylation, hydroxyproline arabinosylation, and tyrosine sulfation, which confer biological activity and chemical stability [20]. Examples include PAMP-induced secreted peptides (PIP), CEP, IDA/IDL, and CLE peptides.
- Non-cysteine-rich/non-PTM peptides play roles in plant defense responses. Examples include systemin (SYS), plant elicitor peptide (PEP), and plant natriuretic peptides (PNP) [23].
2.2. Classification Based on the N-Terminal Sequence
2.3. Identification Methods for SPs
3. Crucial SPs in Regulating Plant Growth and Development
3.1. Tyrosine-Sulfated Peptides
3.1.1. PSK Peptides
3.1.2. PSY Peptides
3.1.3. CIFs and TWS1 Peptides
3.1.4. RGF/GLV/CLEL Peptides
3.2. CLE Peptides
3.2.1. CLV3
3.2.2. TDIF
3.2.3. CLE40
3.2.4. CLE45
3.3. Other SPs
3.3.1. EPF/EPFL Peptides
3.3.2. LURE Peptides
3.3.3. RALF Peptides
3.3.4. CEP Peptides
3.3.5. IDA/IDL Peptides
4. Conclusions and Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Peptide | Plant | Receptor | Function | References |
---|---|---|---|---|
PSKs | Arabidopsis, wheat | PSKR1, PSKR2 | Regulate root growth, cell size, pollen germination, pollen tube growth, seed development. | [4,34] |
PSK5 | Soybean | PSKR1 | Promotes fruit ripening and nutrient accumulation | [35] |
PSYs | Arabidopsis | PSYR1, PSYR2, PSYR3 | PSY promotes root growth by binding to the PSYR receptors | [12,36] |
CIF1/2 | Arabidopsis | GSO1 | Regulate casparian strip development | [37] |
CIF3/4 | Arabidopsis | GSO1/GSO2 | Regulate pollen development | [38] |
TWS1 | Arabidopsis | GSO1/GSO2 | Participate in embryonic cuticle development | [39] |
RGF1 | Arabidopsis | RGI1, RGI2, RGI3, RGI4 | Regulates root development by modulating the apical meristem | [40,41] |
CLV3 | Arabidopsis | CLV1, CLV2, BAMs | Maintains the proper differentiation of stem apical meristem cells | [42,43] |
CLE41/44, TDIF | Arabidopsis | TDR | Enhances cambial cell division and xylem differentiation | [29,44,45] |
CLE40 | Arabidopsis | CLV1, ACR4 | Regulates columella stem cells in the root meristem | [46] |
CLE45 | Arabidopsis | CIK2, BAM3, CLV2 | Inhibits root growth and protophloem differentiation | [47,48] |
EPF1/2 | Arabidopsis | ERL1, ERL2 | Inhibit stomatal development | [49,50] |
EPFL9 | Arabidopsis | ERL1, ERL2 | Regulates stomatal development | [51] |
EPFL4/6 | Torenia fournieri, Arabidopsis | ER | Regulate inflorescence and stem growth | [52] |
LURE1/2 | Arabidopsis | PRK6, MDIS | Regulate pollen tube growth | [53] |
RALF1 | Arabidopsis | FER | Inhibits lateral root growth | [54] |
RALF4/19, RALF34 | Arabidopsis | ANX1/2-BUPS1/2 | Regulate pollen tube development, Induces pollen tube rupture | [55,56] |
CEP3, CEP5 | Arabidopsis | CEPR1 | Regulates plant lateral root growth and the auxin response in lateral root formation | [57,58] |
CEP46-D05 | Cotton | Unknown | Reduces plant height, fiber length and root length | [59] |
IDA/IDL | Arabidopsis, Brassica napus | HAESA, HSL2 | Causes root cap shedding and inflorescence abscission | [60,61] |
IDL1 | Iitchi | Unknown | Promotes floral organ abscission | [62] |
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Lu, S.; Xiao, F. Small Peptides: Orchestrators of Plant Growth and Developmental Processes. Int. J. Mol. Sci. 2024, 25, 7627. https://doi.org/10.3390/ijms25147627
Lu S, Xiao F. Small Peptides: Orchestrators of Plant Growth and Developmental Processes. International Journal of Molecular Sciences. 2024; 25(14):7627. https://doi.org/10.3390/ijms25147627
Chicago/Turabian StyleLu, Shuaiqi, and Fei Xiao. 2024. "Small Peptides: Orchestrators of Plant Growth and Developmental Processes" International Journal of Molecular Sciences 25, no. 14: 7627. https://doi.org/10.3390/ijms25147627
APA StyleLu, S., & Xiao, F. (2024). Small Peptides: Orchestrators of Plant Growth and Developmental Processes. International Journal of Molecular Sciences, 25(14), 7627. https://doi.org/10.3390/ijms25147627