Transcription Factors as the “Blitzkrieg” of Plant Defense: A Pragmatic View of Nitric Oxide’s Role in Gene Regulation
Abstract
:1. Challenges to Plants from Pathogens
2. Plant’s Strategy “Guard” and “Decoy” Models
3. Transcription Factors (TFs): Modulators of Gene Expression
4. Regulatory Role of TFs in Plant Defense
4.1. WRKY TFs
4.2. bHLH TFs
4.3. AP2/ERF TF
4.4. MYB TF Family
4.5. NAC TF Family
5. Evolution of Signaling Molecules
6. The Era of Nitric Oxide (NO)
7. NO Biochemical Properties, Synthesis, and Signaling
8. The Role of NO in Plant Defense
9. NO and TFs
10. Conclusions and Future Recommendations
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Locus ID | Name | Log2 Fold Change | Annotation |
---|---|---|---|
AT1G71520 | - | 10.8359 | Encodes a member of the DREB subfamily A-5 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. |
AT2G22760 | bHLH | 10.1887 | Basic helix-loop-helix (bHLH) DNA-binding superfamily protein; FUNCTIONS IN: DNA binding, sequence-specific DNA binding transcription factor activity |
AT1G22810 | - | 9.96553 | Encodes a member of the DREB subfamily A-5 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. |
AT1G43160 | RAP2.6 | 9.70626 | Encodes a member of the ERF (ethylene response factor) subfamily B-4 of ERF/AP2 transcription factor family (RAP2.6). The protein contains one AP2 domain. |
AT5G64750 | ABR1 | 9.68623 | Expressed in response to ABA, osmotic stress, sugar stress and drought. Mutants are hypersensitive to these stresses. May be involved in regulation of ABA-mediated stress response. |
AT3G53600 | AT3G53600 | 8.79631 | C2H2-type zinc finger family protein, involved in response to chitin, regulation of transcription |
AT4G29930 | AT4G29930 | 8.39629 | Basic helix-loop-helix (bHLH) DNA-binding superfamily protein |
AT4G28140 | - | 8.20867 | Encodes a member of the DREB subfamily A-6 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. |
AT2G40340 | DREB2C | 7.70854 | Encodes a member of the DREB subfamily A-2 of ERF/AP2 transcription factor family. There are eight members in this subfamily including DREB2A AND DREB2B that are involved in response to drought. |
AT4G05100 | AtMYB74 | 7.66846 | Member of the R2R3 factor gene family. |
AT5G01900 | WRKY62 | 7.48636 | Member of WRKY Transcription Factor; Group III |
AT5G53290 | CRF3 | 7.4745 | Encodes a member of the ERF (ethylene response factor) subfamily B-5 of ERF/AP2 transcription factor family. |
AT5G01380 | AT5G01380 | 7.40458 | Homeodomain-like superfamily protein; CONTAINS InterPro DOMAIN/s: SANT, DNA-binding (InterPro:IPR001005), MYB-like |
AT4G37850 | - | 7.35975 | Basic helix-loop-helix (bHLH) DNA-binding superfamily protein; FUNCTIONS IN: DNA binding, sequence-specific DNA binding transcription factor activity |
AT1G52890 | ANAC019 | 7.24886 | Encodes a NAC transcription factor whose expression is induced by drought, high salt, and abscisic acid. This gene binds to ERD1 promoter in vitro. |
AT3G06490 | AtMYB108 | 7.15948 | Putative transcription factor MYB108 (MYB108) mRNA, |
AT1G22640 | ATMYB3 | 7.12171 | MYB-type transcription factor (MYB3) that represses phenylpropanoid biosynthesis gene expression |
AT3G50260 | CEJ1 | 7.04121 | Encodes a member of the DREB subfamily A-5 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. Involved in defense and freezing stress responses. |
AT4G27950 | CRF4 | 7.03719 | Encodes a member of the ERF (ethylene response factor) subfamily B-5 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. There are 7 members in this subfamily. |
AT4G18170 | WRKY28 | 7.00802 | Member of WRKY Transcription Factor; Group II-c. Involved in the activation of salicylic acid biosynthesis genes ICS1 and PBS3. |
AT3G52910 | AtGRF4 | −4.95192 | |
AT4G32280 | IAA29 | −4.88034 | Encodes a member of the DREB subfamily A-4 of ERF/AP2 transcription factor family. The protein contains one AP2 domain. There are 17 members in this subfamily including TINY. |
AT5G03150 | JKD | −4.84552 | Winged-helix DNA-binding transcription factor family protein; FUNCTIONS IN: DNA binding; INVOLVED IN: nucleosome assembly |
AT3G46130 | ATMYB48-3 | −4.80639 | Encodes ICE2 (Inducer of CBF Expression 2), a transcription factor of the bHLH family that participates in the response to deep freezing through the cold acclimation-dependent pathway. Overexpression of ICE2 results in increased tolerance to deep freezing stress after cold acclimation. |
AT1G73830 | BEE3 | −4.50709 | Encodes ICE2 (Inducer of CBF Expression 2), a transcription factor of the bHLH family that participates in the response to deep freezing through the cold acclimation-dependent pathway. Overexpression of ICE2 results in increased tolerance to deep freezing stress after cold acclimation.C144:C163 |
AT3G55734 | MIR393B | −4.48027 | Similar to a putative transcription factor and transcriptional coactivators. Repressor of GA responses and involved in gibberellic acid mediated signaling. Represses GA-induced vegetative growth and floral initiation. Rapidly degraded in response to GA. |
AT1G64625 | - | −4.24715 | |
AT4G30410 | AT4G30410 | −4.22033 | BR enhanced expression 1 (BEE1); FUNCTIONS IN: sequence-specific DNA binding transcription factor activity |
AT1G11850 | - | −4.18487 | Homeodomain-like superfamily protein; FUNCTIONS IN: DNA binding, sequence-specific DNA binding transcription factor activity |
AT4G36540 | BEE2 | −4.1675 | B-box type zinc finger protein with CCT domain; FUNCTIONS IN: sequence-specific DNA binding transcription factor activity, zinc ion binding |
AT1G49010 | - | −4.12299 | Dof-type zinc finger DNA-binding family protein; FUNCTIONS IN: DNA binding, sequence-specific DNA binding transcription factor activity |
AT4G14540 | NF-YB3 | −3.96951 | Encodes a member of the KANADI family of putative transcription factors. Together with KAN1, this gene appears to be involved in the development of the carpel and the outer integument of the ovule.Along with KAN1 and KAN4 appears to regulate the proper localization of PIN1 in early embryogenesis. |
AT3G11090 | LBD21 | −3.95739 | NAC 014 (NAC014); FUNCTIONS IN: sequence-specific DNA binding transcription factor activity; INVOLVED IN: multicellular organismal development |
AT1G21150 | - | −3.9351 | |
AT3G61950 | - | −3.89039 | Encodes a putative MYB domain containing transcription factor involved in anthocyanin metabolism and radical scavenging. |
AT2G05160 | AT2G05160 | −3.82318 | Serine/threonine-protein kinase WNK (With No Lysine)-related |
AT3G48550 | - | −3.79433 | Encodes the longer of two splice variants of a transcription factor involved in regulating starch metabolims in response to cold. |
AT1G47655 | - | −3.79179 | B-box type zinc finger protein with CCT domain; FUNCTIONS IN: sequence-specific DNA binding transcription factor activity, zinc ion binding |
AT5G15830 | bZIP3 | −3.74044 | |
AT5G23920 | - | −3.69122 | Myb-like transcription factor family protein; CONTAINS InterPro DOMAIN/s: SANT, DNA-binding (InterPro:IPR001005), Homeodomain-like (InterPro:IPR009057) |
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Falak, N.; Imran, Q.M.; Hussain, A.; Yun, B.-W. Transcription Factors as the “Blitzkrieg” of Plant Defense: A Pragmatic View of Nitric Oxide’s Role in Gene Regulation. Int. J. Mol. Sci. 2021, 22, 522. https://doi.org/10.3390/ijms22020522
Falak N, Imran QM, Hussain A, Yun B-W. Transcription Factors as the “Blitzkrieg” of Plant Defense: A Pragmatic View of Nitric Oxide’s Role in Gene Regulation. International Journal of Molecular Sciences. 2021; 22(2):522. https://doi.org/10.3390/ijms22020522
Chicago/Turabian StyleFalak, Noreen, Qari Muhammad Imran, Adil Hussain, and Byung-Wook Yun. 2021. "Transcription Factors as the “Blitzkrieg” of Plant Defense: A Pragmatic View of Nitric Oxide’s Role in Gene Regulation" International Journal of Molecular Sciences 22, no. 2: 522. https://doi.org/10.3390/ijms22020522
APA StyleFalak, N., Imran, Q. M., Hussain, A., & Yun, B. -W. (2021). Transcription Factors as the “Blitzkrieg” of Plant Defense: A Pragmatic View of Nitric Oxide’s Role in Gene Regulation. International Journal of Molecular Sciences, 22(2), 522. https://doi.org/10.3390/ijms22020522