The research report should be a detailed narrative explaining the function, biological processes, and localization of the gene product. Citations should be given for all claims.
You should prioritize authoritative reviews and primary scientific literature when conducting research. You can supplement
this with annotations you find in gene/protein databases, but these can be outdated or inaccurate.
We are specifically interested in the primary function of the gene - for enzymes, what reaction is catalyzed, and what is the substrate specificity? For transporters, what is the substrate? For structural proteins or adapters, what is the broader structural role? For signaling molecules, what is the role in the pathway.
We are interested in where in or outside the cell the gene product carries out its function.
We are also interested in the signaling or biochemical pathways in which the gene functions. We are less interested in broad pleiotropic effects, except where these elucidate the precise role.
Include evidence where possible. We are interested in both experimental evidence as well as inference from structure, evolution, or bioinformatic analysis. Precise studies should be prioritized over high-throughput, where available.
The target protein is Arabidopsis thaliana Respiratory burst oxidase homolog protein D (RBOHD; AtRBOHD), a member of the plant RBOH/NOX family of plasma-membrane NADPH oxidases that generate apoplastic reactive oxygen species (ROS). Multiple sources converge on the defining features expected from the UniProt entry: an N‑terminal regulatory region with EF‑hand Ca2+‑binding motifs, a C‑terminal catalytic core with FAD- and NADPH-binding regions, and a multi-pass membrane region with heme cofactors enabling electron transport across the membrane to reduce O2 to superoxide. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 7-10, hu2020nadphoxidasesthe pages 3-5, zhang2023evolutionaryanalysisof pages 1-2, torres2024unveilingwhatmakes pages 2-2)
RBOHD is a plant NADPH oxidase (also called an RBOH) that catalyzes electron transfer from cytosolic NADPH to molecular oxygen (O2) to generate superoxide (O2•−) in the apoplast, which can subsequently form H2O2 (spontaneously or via superoxide dismutase). (hasan2019theroleof pages 24-27, zhang2023evolutionaryanalysisof pages 1-2, torres2024unveilingwhatmakes pages 2-2)
RBOHD matches the canonical plant RBOH domain logic:
- N‑terminal cytosolic region with two EF‑hand Ca2+‑binding motifs and multiple regulatory phosphorylation sites; Ca2+ can directly stimulate activity via EF‑hands. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 7-10, torres2024unveilingwhatmakes pages 2-2)
- C‑terminal cytosolic catalytic region containing FAD- and NADPH-binding domains, supporting electron flow from NADPH → FAD → hemes. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 7-10, hu2020nadphoxidasesthe pages 3-5)
- Six transmembrane helices with two heme groups, with conserved histidines acting as axial ligands—consistent with intramembrane electron transfer. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 7-10, zhang2023evolutionaryanalysisof pages 1-2)
These structural concepts explain how RBOHD can produce extracellular ROS while drawing reducing equivalents from the cytosolic NADPH pool. (krainiukova2025regulationofplant pages 7-10, zhang2023evolutionaryanalysisof pages 1-2)
A PAMP-triggered ROS burst is a rapid, transient increase in apoplastic ROS (often measured by luminol-based chemiluminescence) following recognition of pathogen-associated molecular patterns (PAMPs) by pattern recognition receptors (PRRs). Expert synthesis identifies RBOHD as the major NADPH oxidase responsible for pathogen-triggered ROS in Arabidopsis and highlights that its activity must be transient and tightly controlled to avoid damage. (torres2024unveilingwhatmakes pages 2-2)
RBOHD can be activated directly by Ca2+ binding to its EF-hand motifs, and indirectly via Ca2+-dependent protein kinases (CPKs/CDPKs) that phosphorylate regulatory regions. (torres2024unveilingwhatmakes pages 2-2, krainiukova2025regulationofplant pages 7-10)
A compilation source with residue mapping lists multiple phosphorylation sites on Arabidopsis RBOHD and associated kinases:
- DORN1 → S22, T24 (krainiukova2025regulationofplant pages 14-18)
- BIK1 → S39, S343, S347 (activation) (krainiukova2025regulationofplant pages 14-18)
- RIPK → S343, S347 (krainiukova2025regulationofplant pages 14-18)
- MAP4Ks → S347 (krainiukova2025regulationofplant pages 14-18)
- CPK16 → S133, S148, S163, S347 (krainiukova2025regulationofplant pages 14-18)
- ALR1 → S39 (krainiukova2025regulationofplant pages 14-18)
- LKS4 → S39 on AtRBOHC/D/F (krainiukova2025regulationofplant pages 14-18)
Conserved/featured sites include S133, S163, S343, S347, T912 (with S39 moderately conserved and S148 weakly conserved in this summary). (krainiukova2025regulationofplant pages 14-18)
Expert commentary also highlights layered kinase control in immunity: BIK1/RIPK phosphorylation of N‑terminal residues and CRK2 phosphorylation of C‑terminal residues, with SIK1 acting directly or through BIK1. (torres2024unveilingwhatmakes pages 2-2)
Tight downregulation is a core principle: excessive ROS is detrimental, so plants employ both post-translational and post-transcriptional controls. (torres2024unveilingwhatmakes pages 2-2)
A 2024 primary study (New Phytologist) identifies PB1CP as a negative regulator of RBOHD:
- PB1CP was identified by co-immunoprecipitation + mass spectrometry as an RBOHD-associated factor. (goto2024thephagocytosisoxidasebem1p pages 1-2)
- PB1CP competes with BIK1 for binding to RBOHD in vitro; after PAMP treatment, PB1CP–RBOHD interaction increases and promotes dissociation of phosphorylated BIK1 from RBOHD in vivo. (goto2024thephagocytosisoxidasebem1p pages 1-2)
- PB1CP and RBOHD co-localize at the cell periphery and relocalize to small endomembrane compartments upon PAMP stimulation, consistent with a role in endocytosis. (goto2024thephagocytosisoxidasebem1p pages 1-2)
- PB1CP overexpression reduces RBOHD protein abundance, consistent with promoting removal/turnover. (goto2024thephagocytosisoxidasebem1p pages 1-2)
In a complementary expert synthesis focused on why the ROS burst is transient, additional deactivation layers are emphasized:
- PBL13 phosphorylates the RBOHD C‑terminus in the resting state and this promotes PIRE-mediated ubiquitination and vacuolar degradation.
- C‑terminal nitrosylation is described as a deactivation mechanism.
- PB1CP is framed as part of the endocytic/vacuolar downregulation pathway. (torres2024unveilingwhatmakes pages 2-2)
A 2023 Journal of Biological Chemistry study reports that CBE1 (MOB7; AT4G01290), an eIF4E1-binding protein associated with the 5′ mRNA cap and translation initiation machinery, negatively regulates accumulation of RBOHD protein. Loss/knockdown of CBE1 and related decapping/translation regulators leads to increased RBOHD abundance, elevated elicitor-induced apoplastic ROS, and enhanced antibacterial immunity—supporting a model in which RBOHD output is controlled at the level of translation/decapping-associated ribonucleoprotein regulation rather than only transcription. (george2023arabidopsistranslationinitiation pages 1-2)
In PTI, PRRs such as FLS2/EFR activate downstream cytoplasmic kinases (e.g., BIK1) that phosphorylate RBOHD to drive a rapid ROS burst. (goto2024theleucinerichrepeat pages 1-2)
A 2024 Plant Cell paper places RBOHD in a PRR-associated complex context by identifying QSK1, an LRR receptor kinase, as a PRR–RBOHD complex-associated negative regulator that downregulates PRR abundance (FLS2 and EFR), thereby dampening PTI; the bacterial effector HopF2Pto exploits QSK1 to suppress immunity. (goto2024theleucinerichrepeat pages 1-2)
RBOHD (with RBOHF) is described as a pivotal ROS source for guard cell ABA signaling, supporting ABA-induced stomatal closure. (shen2020persulfidationbasedmodificationof pages 1-4)
In guard cells, redox post-translational modifications provide a mechanistic integration point: persulfidation of RBOHD at Cys825 and Cys890 enhances ROS production and is physiologically relevant to ABA-induced stomatal closure; the same Cys890 is also discussed as a site where S-nitrosylation can suppress ROS during defense. (shen2020persulfidationbasedmodificationof pages 1-4)
A regulation-focused synthesis lists RBOHD involvement in diverse processes including wound-induced responses, damage-induced lignification, biotic and abiotic stress responses, and ABA-/JA-mediated stomatal closure (among others), consistent with its role as a major ROS-producing hub at the plasma membrane. (krainiukova2025regulationofplant pages 10-14)
A stress integration perspective similarly describes RBOHD as a major isoform active in both abiotic and biotic stress, producing apoplastic superoxide/H2O2 that can re-enter cells via aquaporins and function as a signal integrator across stress inputs. (kumar2025principlesofsignal pages 3-4)
The identification of CBE1 as a negative regulator of RBOHD protein accumulation adds a distinct “supply-side” mechanism controlling the amplitude of ROS bursts and immunity outcomes by modulating how much oxidase is available at baseline and/or after elicitation. (george2023arabidopsistranslationinitiation pages 1-2)
Because RBOHD is a central hub for receptor-proximal ROS signaling across immunity and stress acclimation, it is widely discussed as a potential node for engineering stress resilience (e.g., tuning ROS amplitude/duration to improve disease resistance or abiotic stress tolerance), but with a key caveat: inappropriate ROS elevation can be detrimental, so strategies increasingly focus on regulatory modules (kinases/phosphatases, endocytosis/turnover factors, translation control) rather than constitutively increasing oxidase activity. This “tight-control” principle is explicitly emphasized in expert commentary regarding the need to avoid detrimental effects of ROS while enabling defense signaling. (torres2024unveilingwhatmakes pages 2-2, krainiukova2025regulationofplant pages 10-14)
Direct numeric effect sizes (e.g., fold-changes, kinetics parameters, pathogen growth values) were not present in the accessible text snippets. However, quantitative experimental outputs are available as figure evidence from the 2024 PB1CP paper:
- Luminol-based ROS burst assays show that pb1cp mutants display enhanced ROS bursts (triggered by flg22/elf18/chitin) whereas PB1CP overexpression reduces ROS bursts. (goto2024thephagocytosisoxidasebem1p media a584d7aa, goto2024thephagocytosisoxidasebem1p media 2bfdfcb1)
- An immunoblot shows reduced RBOHD protein abundance in PB1CP overexpression lines (basal and flg22-induced). (goto2024thephagocytosisoxidasebem1p media ed823380)
These figure-level data support the central quantitative claim that PB1CP modulates both ROS output and RBOHD protein abundance, even though the exact numeric values are not extractable from the current text-only snippets. (goto2024thephagocytosisoxidasebem1p media a584d7aa, goto2024thephagocytosisoxidasebem1p media ed823380)
Authoritative synthesis converges on a consensus model in which RBOHD serves as a receptor-proximal, plasma-membrane ROS generator whose activity integrates Ca2+ influx, kinase/phosphorylation circuits, and turnover/endocytosis to ensure ROS is produced with the correct magnitude and duration. This is clearly articulated in a 2024 expert commentary focused on why the immune ROS burst is transient, which highlights coordinated activation (EF-hands, BIK1/RIPK/CRK2/SIK1) and multiple shut-off/removal mechanisms (PBL13/PIRE ubiquitination, nitrosylation, PB1CP-mediated endocytosis). (torres2024unveilingwhatmakes pages 2-2)
The following table consolidates key functional annotation points with the best supporting sources.
| Functional aspect | Key points | Best supporting sources with year/venue and URL where available |
|---|---|---|
| Catalytic reaction | Arabidopsis thaliana RBOHD (UniProt Q9FIJ0; At5g47910) is a canonical plant NADPH oxidase/RBOH that transfers electrons from cytosolic NADPH to molecular oxygen, producing apoplastic superoxide (O2•−), which then dismutates to H2O2 for signaling and defense. RBOHD is identified as the major generator of pathogen-triggered ROS in Arabidopsis. (hasan2019theroleof pages 24-27, zhang2023evolutionaryanalysisof pages 1-2, torres2024unveilingwhatmakes pages 2-2) | Hasan 2019, review-like source/thesis (URL not available in snippet); Zhang et al. 2023, Int J Mol Sci https://doi.org/10.3390/ijms24043858; Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502 |
| Electron transfer cofactors/domains | Defining RBOHD/RBOH architecture includes an extended cytosolic N-terminus with two EF-hand Ca2+-binding motifs and phosphorylation sites; a catalytic C-terminal core with FAD- and NADPH-binding domains; six transmembrane helices; and two heme groups coordinated by conserved His residues for electron transfer across the plasma membrane. These features align with the UniProt annotation and distinguish RBOHD from non-RBOH oxidoreductases such as FROs. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 7-10, hu2020nadphoxidasesthe pages 3-5, zhang2023evolutionaryanalysisof pages 1-2, krainiukova2025regulationofplant pages 35-37) | Hu et al. 2020, Cells https://doi.org/10.3390/cells9020437; Zhang et al. 2023, Int J Mol Sci https://doi.org/10.3390/ijms24043858; Hasan 2019, review-like source/thesis (URL not available in snippet) |
| Activation inputs: Ca2+ and phosphoregulation | RBOHD is activated by direct Ca2+ binding to EF-hands and by phosphorylation. Residue-level sites supported in the available evidence: DORN1→S22/T24; BIK1→S39/S343/S347; RIPK→S343/S347; MAP4Ks→S347; CPK16→S133/S148/S163/S347; ALR1→S39; LKS4→S39 on AtRBOHC/D/F. Conserved phosphosites highlighted include S133, S163, S343, S347, and T912, with S39 moderately conserved and S148 weakly conserved. These modifications are linked to enzyme activation and ROS production. (krainiukova2025regulationofplantc pages 14-18, krainiukova2025regulationofplant pages 14-18, krainiukova2025regulationofplantd pages 14-18, krainiukova2025regulationofplanta pages 14-18) | Krainiukova 2025, regulation review (journal not specified in snippet; URL not available); Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502 |
| PRR-linked activation and signaling complexes | In PTI, PRR-BAK1 signaling activates BIK1, which phosphorylates RBOHD to trigger rapid ROS production. QSK1 is a PRR-RBOHD complex-associated LRR receptor kinase that downregulates FLS2 and EFR abundance and dampens PRR-triggered immunity. HopF2Pto exploits QSK1 to suppress this module. RBOHD therefore functions in a receptor-proximal signaling hub coupling PRRs to ROS and Ca2+ signaling. (goto2024theleucinerichrepeat pages 1-2, torres2024unveilingwhatmakes pages 2-2) | Goto et al. 2024, Plant Cell https://doi.org/10.1093/plcell/koae267; Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502 |
| Negative regulation and turnover | RBOHD is tightly downregulated to prevent excessive ROS. PB1CP is a 2024-defined negative regulator that binds RBOHD, competes with BIK1 for RBOHD association, enhances dissociation of phosphorylated BIK1 from RBOHD after PAMP treatment, and relocalizes with RBOHD to small endomembrane compartments, consistent with promotion of endocytosis. Overexpression of PB1CP lowers RBOHD protein abundance. Expert commentary further states that PBL13 phosphorylates the RBOHD C-terminus, promoting PIRE-mediated ubiquitination and vacuolar degradation; deactivation also involves C-terminal nitrosylation. (goto2024thephagocytosisoxidasebem1p pages 1-2, goto2024thephagocytosisoxidasebem1p pages 2-3, torres2024unveilingwhatmakes pages 2-2) | Goto et al. 2024, New Phytologist https://doi.org/10.1111/nph.19302; Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502 |
| Post-transcriptional / translational control | Beyond post-translational regulation, RBOHD abundance is controlled post-transcriptionally. George et al. identified CBE1, an eIF4E1-binding protein associated with the 5′ mRNA cap/translation initiation machinery, as a negative regulator of RBOHD accumulation. Loss or knockdown of CBE1 and related decapping/translation-initiation regulators increases RBOHD protein levels, enhances elicitor-induced apoplastic ROS, and increases antibacterial immunity, supporting translational control of RBOHD output. (george2023arabidopsistranslationinitiation pages 1-2) | George et al. 2023, J Biol Chem https://doi.org/10.1016/j.jbc.2023.105018 |
| Cellular localization | RBOHD is a plasma membrane-localized NADPH oxidase that produces ROS into the apoplast. Its activity and spatial control are tied to membrane microdomains and receptor complexes at the cell periphery. Upon PAMP treatment, PB1CP and RBOHD relocalize from the cell periphery to small endomembrane compartments, consistent with regulated endocytosis/turnover. (hasan2019theroleof pages 24-27, krainiukova2025regulationofplant pages 35-37, goto2024thephagocytosisoxidasebem1p pages 1-2) | Hasan 2019, review-like source/thesis (URL not available in snippet); Goto et al. 2024, New Phytologist https://doi.org/10.1111/nph.19302 |
| Key biological processes | Supported roles include pathogen-triggered immunity/PTI, fungal resistance, ROS-Ca2+ signal coupling, abiotic stress responses, wound/damage signaling, lignification, and ABA-/JA-related stomatal closure in broader RBOHD-focused regulation reviews/commentaries. In the supplied evidence, RBOHD is especially central to rapid PAMP-induced ROS production and downstream immune signaling. (krainiukova2025regulationofplant pages 10-14, torres2024unveilingwhatmakes pages 2-2, goto2024thephagocytosisoxidasebem1p pages 1-2, goto2024theleucinerichrepeat pages 1-2) | Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502; Goto et al. 2024, New Phytologist https://doi.org/10.1111/nph.19302; Goto et al. 2024, Plant Cell https://doi.org/10.1093/plcell/koae267 |
| 2023–2024 advances | Notable recent advances in the supplied evidence are: (i) CBE1-mediated translational repression of RBOHD accumulation (2023); (ii) PB1CP as a negative regulator that removes phosphorylated BIK1 and promotes RBOHD endocytosis (2024); (iii) QSK1 as a PRR-RBOHD complex-associated regulator exploited by HopF2Pto (2024); and (iv) expert synthesis highlighting transient ROS burst control via PBL13/PIRE-mediated degradation, PB1CP action, and kinase layering (BIK1/RIPK/CRK2/SIK1). Direct quantitative fold-changes are not given in the available snippets, but the cited figures reportedly show enhanced ROS in pb1cp mutants, reduced ROS in PB1CP overexpressors, and reduced RBOHD protein abundance upon PB1CP overexpression. (goto2024thephagocytosisoxidasebem1p pages 1-2, goto2024theleucinerichrepeat pages 1-2, george2023arabidopsistranslationinitiation pages 1-2, torres2024unveilingwhatmakes pages 2-2, goto2024thephagocytosisoxidasebem1p media a584d7aa) | George et al. 2023, J Biol Chem https://doi.org/10.1016/j.jbc.2023.105018; Goto et al. 2024, New Phytologist https://doi.org/10.1111/nph.19302; Goto et al. 2024, Plant Cell https://doi.org/10.1093/plcell/koae267; Torres 2024, New Phytologist https://doi.org/10.1111/nph.19502 |
Table: This table condenses the most relevant supported findings for Arabidopsis thaliana RBOHD, including catalytic function, domain architecture, residue-level regulation, localization, pathway context, and key 2023-2024 advances. It is useful as a citation-linked functional annotation snapshot restricted to claims supported by the provided evidence snippets.
This report is restricted to evidence retrievable in the current tool session. Some highly specific quantitative statistics (exact fold changes, kinetic parameters, pathogen growth CFU differences, precise PRR abundance changes) likely exist in the full primary papers but were not extractable from the available text snippets; where possible, figure-level evidence was retrieved to support quantitative claims (ROS burst and immunoblot changes in the PB1CP study). (goto2024thephagocytosisoxidasebem1p media a584d7aa, goto2024thephagocytosisoxidasebem1p media ed823380)
References
(hasan2019theroleof pages 24-27): MS Hasan. The role of rboh-mediated ros and glutathione in plant-nematode interaction. Unknown journal, 2019.
(krainiukova2025regulationofplant pages 7-10): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(hu2020nadphoxidasesthe pages 3-5): Chun-Hong Hu, Peng-Qi Wang, Peng-Peng Zhang, Xiu-Min Nie, Bin-Bin Li, Li Tai, Wen-Ting Liu, Wen-Qiang Li, and Kun-Ming Chen. Nadph oxidases: the vital performers and center hubs during plant growth and signaling. Cells, 9:437, Feb 2020. URL: https://doi.org/10.3390/cells9020437, doi:10.3390/cells9020437. This article has 187 citations.
(zhang2023evolutionaryanalysisof pages 1-2): Haiyang Zhang, Xu Wang, An Yan, Jie Deng, Yanping Xie, Shiyuan Liu, Debin Liu, Lin He, Jianfeng Weng, and Jingyu Xu. Evolutionary analysis of respiratory burst oxidase homolog (rboh) genes in plants and characterization of zmrbohs. International Journal of Molecular Sciences, 24:3858, Feb 2023. URL: https://doi.org/10.3390/ijms24043858, doi:10.3390/ijms24043858. This article has 44 citations.
(torres2024unveilingwhatmakes pages 2-2): Miguel‐Ángel Torres. Unveiling what makes the reactive oxygen species burst transient: the role of pb1cp in plant immunity. The New phytologist, 241:1384-1386, Jan 2024. URL: https://doi.org/10.1111/nph.19502, doi:10.1111/nph.19502. This article has 3 citations.
(krainiukova2025regulationofplant pages 14-18): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(goto2024thephagocytosisoxidasebem1p pages 1-2): Yukihisa Goto, Noriko Maki, Jan Sklenar, Paul Derbyshire, Frank L. H. Menke, Cyril Zipfel, Yasuhiro Kadota, and Ken Shirasu. The phagocytosis oxidase/bem1p domain-containing protein pb1cp negatively regulates the nadph oxidase rbohd in plant immunity. The New phytologist, 241:1763-1779, Oct 2024. URL: https://doi.org/10.1111/nph.19302, doi:10.1111/nph.19302. This article has 20 citations.
(george2023arabidopsistranslationinitiation pages 1-2): Jeoffrey George, Martin Stegmann, Jacqueline Monaghan, Julia Bailey-Serres, and Cyril Zipfel. Arabidopsis translation initiation factor binding protein cbe1 negatively regulates accumulation of the nadph oxidase respiratory burst oxidase homolog d. Journal of Biological Chemistry, 299:105018, Aug 2023. URL: https://doi.org/10.1016/j.jbc.2023.105018, doi:10.1016/j.jbc.2023.105018. This article has 10 citations and is from a domain leading peer-reviewed journal.
(goto2024theleucinerichrepeat pages 1-2): Yukihisa Goto, Yasuhiro Kadota, Malick Mbengue, Jennifer D Lewis, Hidenori Matsui, Noriko Maki, Bruno Pok Man Ngou, Jan Sklenar, Paul Derbyshire, Arisa Shibata, Yasunori Ichihashi, David S Guttman, Hirofumi Nakagami, Takamasa Suzuki, Frank L H Menke, Silke Robatzek, Darrell Desveaux, Cyril Zipfel, and Ken Shirasu. The leucine-rich repeat receptor kinase qsk1 regulates prr-rbohd complexes targeted by the bacterial effector hopf2pto. The Plant Cell, 36:4932-4951, Oct 2024. URL: https://doi.org/10.1093/plcell/koae267, doi:10.1093/plcell/koae267. This article has 19 citations.
(shen2020persulfidationbasedmodificationof pages 1-4): Jie Shen, Jing Zhang, Mingjian Zhou, Heng Zhou, Beimi Cui, Cecilia Gotor, Luis C. Romero, Ling Fu, Jing Yang, Christine Helen Foyer, Qiaona Pan, Wenbiao Shen, and Yanjie Xie. Persulfidation-based modification of cysteine desulfhydrase and the nadph oxidase rbohd controls guard cell abscisic acid signaling. Plant Cell, 32:1000-1017, Feb 2020. URL: https://doi.org/10.1105/tpc.19.00826, doi:10.1105/tpc.19.00826. This article has 295 citations and is from a highest quality peer-reviewed journal.
(krainiukova2025regulationofplant pages 10-14): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(kumar2025principlesofsignal pages 3-4): Vijay Kumar, Madita Knieper, Lara Vogelsang, Ibadete Denjali, Thorsten Seidel, and Karl-Josef Dietz. Principles of signal integration in combinatorial stress acclimatization. Philosophical Transactions of the Royal Society B: Biological Sciences, May 2025. URL: https://doi.org/10.1098/rstb.2024.0243, doi:10.1098/rstb.2024.0243. This article has 2 citations and is from a domain leading peer-reviewed journal.
(goto2024thephagocytosisoxidasebem1p media a584d7aa): Yukihisa Goto, Noriko Maki, Jan Sklenar, Paul Derbyshire, Frank L. H. Menke, Cyril Zipfel, Yasuhiro Kadota, and Ken Shirasu. The phagocytosis oxidase/bem1p domain-containing protein pb1cp negatively regulates the nadph oxidase rbohd in plant immunity. The New phytologist, 241:1763-1779, Oct 2024. URL: https://doi.org/10.1111/nph.19302, doi:10.1111/nph.19302. This article has 20 citations.
(goto2024thephagocytosisoxidasebem1p media 2bfdfcb1): Yukihisa Goto, Noriko Maki, Jan Sklenar, Paul Derbyshire, Frank L. H. Menke, Cyril Zipfel, Yasuhiro Kadota, and Ken Shirasu. The phagocytosis oxidase/bem1p domain-containing protein pb1cp negatively regulates the nadph oxidase rbohd in plant immunity. The New phytologist, 241:1763-1779, Oct 2024. URL: https://doi.org/10.1111/nph.19302, doi:10.1111/nph.19302. This article has 20 citations.
(goto2024thephagocytosisoxidasebem1p media ed823380): Yukihisa Goto, Noriko Maki, Jan Sklenar, Paul Derbyshire, Frank L. H. Menke, Cyril Zipfel, Yasuhiro Kadota, and Ken Shirasu. The phagocytosis oxidase/bem1p domain-containing protein pb1cp negatively regulates the nadph oxidase rbohd in plant immunity. The New phytologist, 241:1763-1779, Oct 2024. URL: https://doi.org/10.1111/nph.19302, doi:10.1111/nph.19302. This article has 20 citations.
(krainiukova2025regulationofplant pages 35-37): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(krainiukova2025regulationofplantc pages 14-18): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(krainiukova2025regulationofplantd pages 14-18): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(krainiukova2025regulationofplanta pages 14-18): E Krainiukova. Regulation of plant nadph oxidases: roles in development, cell polarity, and stress responses. Unknown journal, 2025.
(goto2024thephagocytosisoxidasebem1p pages 2-3): Yukihisa Goto, Noriko Maki, Jan Sklenar, Paul Derbyshire, Frank L. H. Menke, Cyril Zipfel, Yasuhiro Kadota, and Ken Shirasu. The phagocytosis oxidase/bem1p domain-containing protein pb1cp negatively regulates the nadph oxidase rbohd in plant immunity. The New phytologist, 241:1763-1779, Oct 2024. URL: https://doi.org/10.1111/nph.19302, doi:10.1111/nph.19302. This article has 20 citations.