Plant Non-Specific Lipid Transfer Proteins (nsLTPs): Comprehensive Functional Analysis and Defense Mechanisms
Simple Summary
Abstract
1. Introduction
2. Evolution and Structural Confirmation of nsLTPs
3. Classification of Plant nsLTPs
4. Spatial Expression and Cellular Localization of Plant nsLTPs
5. Biological Significances of nsLTPs
5.1. Defensive Functions of nsLTPs Under Biotic Stress
5.2. Defensive Functions of nsLTPs Under Abiotic Stress
5.3. Role of nsLTPs in Cuticular Wax Deposition
5.4. Involvement of nsLTPs in Seed Development
5.5. nsLTPs as Modulators of Plant Signal Transduction
6. Precise Gene Editing Technology: Future Directions
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| nsLTP Type | Reference | Classification Standard | Signal Peptide | Subcellular Localization | Species | Examples |
|---|---|---|---|---|---|---|
| I, II | [7] | Molecular weight | Yes | Secretory pathway (SP) | Most Monocot/Dicot | AcvLTP1.1-3, AtLTP12, PtLTP2.1 |
| I to IX | [28] | Sequence similarity, intervals of eight cysteine residues | Yes | SP | Rice, Arabidopsis, and wheat | OsLTP1, AtLTP2, TaLTP5 |
| I–V & X | [4] | Sequence identity and eight cysteine residue intervals | Yes | SP | Solanaceae | CaLTP2, SlLTP1, NtLTP3 |
| I, II, C, D, E, F, G, H, J, K | [5] | GPI modification site, sequence similarity, and cysteine residue spacing | Yes | SP, Mitochondria | Green and red algae, moss, ferns, and conifers | PtLTPc1-2, MpLTPd1-8, SmLTPe1-3, PtLTPf1, MpLTPg1-4, SmLTPh1-6, PpLTPj1-7, PpLTPk1-2 |
| III, VIII, V, VI, IX, XI, I, II, IV | [8] | Amino acid length (60–150 aa), signal peptide, monodomain | Yes | SP | Wheat, Rice | TdLTP, OsLTP2 |
| New algal lineage | [33] | Presence of 8CM, signal peptide and phylogenetic cluster | Yes | SP | Algae | CrLTP1, CrLTP2 |
| nsLTP | Species | Localization | Method | Functions | Reference |
|---|---|---|---|---|---|
| DIR1 | Arabidopsis (A. thaliana) | Extracellular | Petiole exudate | Systemic Acquired Resistance (SAR) | [38] |
| LTP1 | Arabidopsis (A. thaliana) | Cell wall | Immunochemical study | Cuticle assembly | [39] |
| PAPI | Barley (Hordeum vulgare) | Extracellular | Cell culture | Defense barrier | [40] |
| HaAP10 | Sunflower (Helianthus annuus) | Apoplastic, plasma membrane, intracellular | Fluor-immunolocalization studies | Antifungal | [41] |
| nsLTP | Castor bean (Ricinus communis) | Glyoxysome matrix and cell wall | Immunolocalization, cell fractionation analysis | Lipid storage | [42] |
| SsLTP1 | Eggplant (Solanum sogarandinum) | Intracellular | Western analysis | Lipid trafficking | [43] |
| LTP12 | Arabidopsis (A. thaliana) | Plasma membrane | Fluor-immunolocalization study | Membrane stabilization | [44] |
| LTP3 | Arabidopsis (A. thaliana) | Cytoplasm | Arabidopsis protoplast transformation | Lipid binding | [45] |
| LTPG | Arabidopsis (A. thaliana) | Plasma membrane | Transgenic experiment Promoter::YFP-LTPG | Cuticular lipid export | [46] |
| PpLTPG2 | Physcomitrella (Physcomitrella patens) | Plasma membrane | 35S::YFP-PpLTPG2 fusion | Lipid export | [47] |
| Ca-LTP1 | Pepper (Capsicum annuum) | Intracellular vesicles, extracellular space | Immunolocalization, Western blotting | Defense | |
| LTP2 | Arabidopsis (A. thaliana) | Extracellular | TAIR | Wax formation | [48] |
| VuLTP | Cowpea (Vigna unguiculata) | Extracellular, cell wall, vacuoles | Immunolocalization of tissue sections | Antimicrobial | [49] |
| WAX9 | Broccoli (Brassica oleracea) | Cell wall | Immunogold labelling | Wax deposition | [50] |
| EP2 | Carrot (Daucus carota) | Extracellular | Embryogenic cell culture | Plant development | [51] |
| Two LTPs | Tobacco (Nicotiana tabacum) | Extracellular | Proteomic analysis | Defense | [52] |
| nsLTP1e1 | Wheat (Triticum aestivum) | Aleurone granules | Immunolocalization study | Seed storage | [53] |
| Four LTPs | Grape (Vitis vinifera) | Extracellular | Somatic embryo cultures | Embryo lipid barrier | [54] |
| AtLTP3 | Arabidopsis (A. thaliana) | Plasma membrane | Reporter-based transcriptional fusion/plasmolysis | Lipid dynamics | [44] |
| AtLTP4 | Arabidopsis (A. thaliana) | Plasma membrane | Reporter-based transcriptional fusion/plasmolysis | Membrane stabilization | [44] |
| AtLTP5 | Arabidopsis (A. thaliana) | Cell wall | Reporter-based transcriptional fusion/plasmolysis | Cell wall lipid reinforcement | [44] |
| AtLTP6 | Arabidopsis (A. thaliana) | Cell wall | Reporter-based transcriptional fusion/Plasmolysis | Structural lipid support | [44] |
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Giri, B.; Kumar, D. Plant Non-Specific Lipid Transfer Proteins (nsLTPs): Comprehensive Functional Analysis and Defense Mechanisms. Biology 2026, 15, 417. https://doi.org/10.3390/biology15050417
Giri B, Kumar D. Plant Non-Specific Lipid Transfer Proteins (nsLTPs): Comprehensive Functional Analysis and Defense Mechanisms. Biology. 2026; 15(5):417. https://doi.org/10.3390/biology15050417
Chicago/Turabian StyleGiri, Bikram, and Dhirendra Kumar. 2026. "Plant Non-Specific Lipid Transfer Proteins (nsLTPs): Comprehensive Functional Analysis and Defense Mechanisms" Biology 15, no. 5: 417. https://doi.org/10.3390/biology15050417
APA StyleGiri, B., & Kumar, D. (2026). Plant Non-Specific Lipid Transfer Proteins (nsLTPs): Comprehensive Functional Analysis and Defense Mechanisms. Biology, 15(5), 417. https://doi.org/10.3390/biology15050417

