| Literature DB >> 31111642 |
Zhi Wang1,2, Zuoren Yang1,2, Fuguang Li1,2.
Abstract
Trichomes are specialized epidermal cells and a vital plant organ that protect plants from various harms and provide valuable resources for plant development and use. Some key genes related to trichomes have been identified in the model plant Arabidopsis thaliana through glaEntities:
Keywords: Arabidopsis; cotton; molecular mechanism; plant trichome
Mesh:
Substances:
Year: 2019 PMID: 31111642 PMCID: PMC6686129 DOI: 10.1111/pbi.13167
Source DB: PubMed Journal: Plant Biotechnol J ISSN: 1467-7644 Impact factor: 9.803
Figure 1The positive and negative regulation through hub in Arabidopsis trichome development. Left panel, the regulation in trichome initiation. The hub comprises GL1, TTG1, GL3 and EGL3, in which EGL3 function redundantly with GL3. Some redundant regulators including GIS, GIS2, GIS3 and ZFP8 function upstream of the hub as important mediators, linking GA and CK to regulate trichome development. GL2 functions downstream of the hub in trichome development and partially redundant with TTG2. Green ovals indicate the positive transcription factors. Yellow ovals indicate the stimulating phytohormones. The brown oval indicates the negative transcription factor upstream of the hub. The green and red rounded rectangles indicate positive and negative epigenetic factors, among which ECT2 stabilizes TTG1 transcripts and positively regulates trichomes. TEM2 represses both GL1 and GL2 transcriptionally to inhibit trichome development directly. Further, TEM2 also represses GIS2 and ZFP8 directly by binding their promoters. GL3 and EGL3 are degraded through protein ubiquitination pathway involved by UPL3 directly. Moreover, over‐expression of GL1 repressed trichome development through triggering an unknown leaf epidermal inhibition programme (LEIP) (green and red dashes). Therefore, the homeostasis of GL1 is vital for trichome development in Arabidopsis. The yellow oval – JA degrades transcription factor JAZ and in turn activates the GL1/TTG1/GL3 hub in trichome development. The green rounded rectangle – GCN5 promotes GL1, GL2 and GL3 to involve trichome initiation positively. Because mutant gl2 showed less defects in trichome development than gl1 and ttg1 mutants, other unknown pathways downstream of GL1/TTG1 may exist in trichome development (black dashes). Right panel, the regulation in trichome branching. The red rounded rectangle – GCN5 represses TRY function indirectly in trichome branching. Another red rounded rectangle indicates the inhibiting epigenetic modifier‐miR319, which down‐regulated TCP4 by microRNA‐mediating RNA interfering pathway and GIS involved in trichome branching. GIS is a multifunctional regulator, playing positive and negative roles in trichome initiation and branching, respectively. In addition, GL3 also plays positive role in trichome branching.
Key transcription factors in the regulation of Arabidopsis trichome development
| Gene name | Gene locus | Gene family | Function in trichome | References |
|---|---|---|---|---|
| GL1 | AT3G27920 | MYB | Positive and negative in initiation | Larkin |
| GL2 | AT1G79840 | HD‐ZIP IV | Positive in initiation | Johnson |
| GL3 | AT5G41315 | bHLH | Positive in initiation and branching | Payne |
| EGL3 | AT1G63650 | bHLH | Positive in initiation | Zhang |
| TTG1 | AT5G24520 | WD repeat | Positive in initiation | Payne |
| TTG2 | AT2G37260 | WRKY | Positive in initiation | Johnson |
| TRY | AT5G53200 | MYB | Negative in initiation | Schellmann |
| CPC | AT2G46410 | MYB | Negative in initiation | Schellmann |
| GIS | AT3G58070 | C2H2 | Positive in initiation and negative in branching | An |
| GIS2 | AT5G06650 | C2H2 | Positive in initiation | Gan |
| GIS3 | AT1G68360 | C2H2 | Positive in initiation | Sun |
| ZFP8 | AT2G41940 | C2H2/zinc finger | Positive in initiation | Gan |
| TEM1 | AT1G25560 | AP2/B3 | Negative in initiation | Matias‐Hernandez |
| TEM2 | AT1G68840 | AP2/B3 | Negative in initiation | Matias‐Hernandez |
| TCP4 | AT3G15030 | TCP | Negative in trichome branching | Vadde |
| JAZ1 | AT1G19180 | JASMONATE‐ZIM‐DOMAIN | Negative in initiation | Qi |
| GAI | AT1G14920 | DELLAR | Negative in initiation | Jacobsen |
The key transcription factors in fibre development of cotton (Gossypium hirsutum)
| Gene name | Gene locus | Gen family | Function in fibre | References |
|---|---|---|---|---|
| MYB109 | Gh_A05G3123 | MYB | Positive in initiation and elongation | Suo |
| MYB25 | Gh_D04G1901 | MYB | Positive in leaf trichome and fibre initiation | Machado |
| MML3_A12 | Gh_A12G1503 | MYB | Positive in fuzz fibre initiation | Wan |
| MML4_D12 | Gh_D12G1630 | MYB | Positive in lint fibre initiation | Wu |
| MYB212 | Gh_D11G3078 | MYB | Positive in elongation | Sun |
| MYB46_D13 | Gh_D13G2261 | MYB | Positive in secondary cell wall deposition | Huang |
| MYB46_D9 | Gh_D09G1082 | MYB | Positive in secondary cell wall deposition | Huang |
| CPC | Gh_D06G2201 | MYB | Negative in initiation | Liu |
| TRY | Gh_A11G0869 | MYB | Negative in initiation | Liu |
| HD1 | Gh_D06G1607 | HD‐ZIP IV | Positive in initiation | Zhang |
| HOX3 | Gh_A05G3845 | HD‐ZIP IV | Positive in initiation | Zhang |
| TTG1 | Gh_A08G0926 | WD repeat | Positive in initiation | Liu |
| TTG2 | Gh_A10G1120 | WD repeat | Positive in initiation | Liu |
| TTG3 | Gh_Sca011289G01 | WD repeat | Positive in initiation | Liu |
| TTG4 | Gh_D02G1136 | WD repeat | Positive in initiation | Liu |
| SLR1 | Gh_A07G0717 | DELLA | Negative in elongation | Shan |
| BZR1 | Gh_A05G1683 | BES1_N | Positive in initiation | Zhou |
| MADS11 | Gh_A03G0634 | MADS‐box | Positive in elongation | Li |
| MADS14 | Gh_A05G2136 | MADS‐box | Negative in fibre elongation | Zhou |
| TCP14 | Gh_A11G0279 | TCP | Positive in initiation and elongation | Wang |
| JAZ2 | Gh_D06G0810 | JASMONATE‐ZIN‐DOMAIN | Negative in lint and fuzz fibre initiation | Hu |
| FSN1 | Gh_A12G1049 | NAC | Positive in SCW | Zhang |
Comparison of the molecular mechanisms between Arabidopsis trichome and cotton fibre development
| Species | Arabidopsis | Cotton | |||
|---|---|---|---|---|---|
| Development stages | |||||
| Classification | Types | Trichome initiation | Trichome branching | Fibre initiation and elongation | Secondary cell wall synthesis |
| Transcription factors | MYB | GL1, TRY, CPC | NR | MYB25, MYB109, MYB212, CPC, TRY | MYB46 |
| HD‐ZIP | GL2 | NR | HD1, HOX3 | NR | |
| bHLH | GL3, EGL3 | GL3 | NR | NR | |
| WD repeat | TTG1 | NR | TTG1, TTG2, TTG3, TTG4 | NR | |
| Other | TEM1/2, GISs, TTG2 | GIS, TCP4 | TCP14, MADS11/14 | FSN1 | |
| Phytohormones | Auxin | NR | NR | Positive (AUX1, PIN3) | NR |
| GA | Positive | NR | Positive (SLR1) | NR | |
| JA | Positive (JAZ1) | NR | Positive (JAZ2) | NR | |
| Ethylene | NR | NR | Positive (ACO1) | NR | |
| BR | NR | NR | Positive (DET2, PAG1, BZR1) | NR | |
| ABA | NR | NR | Negative | NR | |
| Epigenetic modifications | DNA methylation | NR | NR | Negative | NR |
| RNA modification | Positive (ECT2) | NR | NR | NR | |
| Histone methylation | NR | NR | NR | NR | |
| Histone acetylation | Positive (GCN5) | Negative (GCN5) | Positive (HDA5) | NR | |
| Protein ubiquitination | NR | Negative (UPL3) | Positive (HUB2) | Positive (HUB2) | |
| Noncoding RNA | NR | Negative (miR319) | Positive (GhMML3_A12, miRNA156/157, miR828/858) | NR | |
NR, not reported.
Figure 2Key transcription factors in the regulation of cotton fibre development. The conserved transcriptional factors associated with MYB, bHLH and HD‐bZIP types were identified, and the possible mechanisms are presented in the regulation network of fibre development. The key positive and negative transcription factors are represented in yellow and brown ovals. The grey rounded rectangles indicate the phytohormones JA, ethylene and ROS. Most of them function in fibre (lint and fuzz) initiation and elongation except FSN, MYB46_D9/D13 and KNL1, which function in the secondary cell wall deposition stage. CPC functions upstream of TTG1/MYC1 as a negative factor similar with that in Arabidopsis. KNL1 is a transcription repressor to inhibit the expression of cell wall and SCW‐related genes. During the maturation stage, the underlying molecular mechanisms and factors are mostly unknown, in which stage the fibres start dehydrating and become dry. Clarification for fibre maturation may contribute to understanding the premature mechanisms in cotton.
Figure 3The molecular mechanisms of phytohormones in regulation of fibre development. The different phytohormones are involved in distinct pathways and molecular mechanisms in fibre development. Furthermore, some interactions among specific phytohormones and transcription factors are displayed. Yellow and brown ovals indicate the associated positive and negative transcription factors involved in the phytohormones, respectively. Grey rounded rectangles indicate the important phytohormones and metabolites. Other important proteins, receptor and enzymes are indicated with red and white ovals (e.g. PIN3, DET2, PAG1, BRI1).
Figure 4The epigenetic mechanisms in regulation of fibre development. Some epigenetic modifications involve distinct pathways and molecular mechanisms in fibre development. Additionally, some interactions among specific epigenetic modifications and other factors are presented here. Green ovals indicate the epigenetic modification factors. Yellow and brown ovals indicate the positive and negative transcription factors involved in the epigenetic modifications, respectively. Grey rounded rectangle indicates the associated metabolites.
Figure 5The interaction between metabolic pathways and signalling involving reactive oxygen species, K+ and Ca+2 in fibre development. ROS, K+ and Ca+2 play positive roles and mutually regulate fibre development. Ca2+ deficiency (whitening) induces K+ accumulation through CIPK6 to regulate fibre development; on the other hand, excessive Ca2+ (reddening) promotes calcium sensor CaM7 function and ROS accumulation, and increasing ROS also facilitate the K+ accumulation by KT1/KT2 function. Furthermore, sucrose functions downstream of ROS to involve the fibre development. Therefore, the homeostasis of K+ and Ca+2 contents in the cell is vital for fibre development. SPS (sucrose‐phosphate synthase) and SUS (sucrose synthase) regulate the sucrose synthesis and degradation, respectively. An annexin, GhAnn2, function upstream of the Ca2+ pathway in mediating fibre development.