Arabidopsis thaliana Type One Protein Phosphatases: Context-Dependent Regulators of Development, Stress Responses, and Immunity

Abstract

Reversible protein phosphorylation enables plants to coordinate growth, stress responses, and immunity. Arabidopsis thaliana TYPE ONE PROTEIN PHOSPHATASES (TOPPs), homologs of eukaryotic protein phosphatase 1 catalytic subunits, exemplify how a highly conserved phosphatase family can generate distinct signaling outputs. The nine TOPPs are partially redundant, yet their functions are shaped by regulatory partners, substrate recruitment, expression patterns, and subcellular localization. TOPP4 dephosphorylates DELLA repressors, PIN1, and PIF5; TOPP1-associated complexes regulate ABA signaling through SnRK2s; and TOPP1, TOPP4, and TOPP5 dephosphorylate EIN2 at Ser655 to reinforce ethylene signaling. TOPP4 directly dephosphorylates ATG13a, while TOPP1, TOPP3, and TOPP9 also reduce ATG13a phosphorylation in planta; higher-order topp mutants support broader family-level redundancy during fixed-carbon starvation-induced autophagy. In immunity, TOPPs restrain basal defense, mutant TOPP4 states are monitored by the CNL receptor SUT1, and the Pseudomonas syringae effector AvrE targets TOPPs to enhance ABA-dependent water soaking. Collectively, current evidence supports a model in which catalytic redundancy is constrained by protein interactions and spatially restricted substrate access. Defining these TOPP complexes and their phosphosites may enable more selective manipulation of plant signaling than altering bulk phosphatase activity.

Share and Cite:

Chen, K. and Huang, J.Z. (2026) <i>Arabidopsis</i> <i>thaliana</i> Type One Protein Phosphatases: Context-Dependent Regulators of Development, Stress Responses, and Immunity. <i>Journal of Biosciences and Medicines</i>, <b>14</b>, 425-439. doi: <a href='https://doi.org/10.4236/jbm.2026.149026' target='_blank' onclick='SetNum(154029)'>10.4236/jbm.2026.149026</a>.

1. Introduction

Reversible phosphorylation regulates protein activity, stability, interactions, and localization, enabling plants to respond rapidly to developmental and environmental cues [1] [2]. Protein phosphatases therefore do more than terminate signals: by removing specific phosphate groups, they can alter signaling thresholds, duration, and pathway output. For many phosphatases, specificity depends less on divergence of the catalytic pocket than on regulatory proteins, substrate docking, and subcellular localization [3]-[5]. This principle is particularly relevant to the Arabidopsis TYPE ONE PROTEIN PHOSPHATASES (TOPPs), homologs of eukaryotic protein phosphatase 1 (PP1) catalytic subunits. Arabidopsis contains nine TOPP genes, TOPP1-TOPP9, with highly conserved catalytic domains [6]-[8]. Genetic evidence, however, supports neither complete redundancy nor strict isoform specificity. Single mutants often display modest phenotypes, whereas higher-order mutants reveal shared roles in ABA responses, immunity, autophagy, and ethylene signaling [9]-[12]. This combination of conservation and selectivity is best explained by the molecular context in which a TOPP operates. AtI-2 directly binds and inhibits TOPPs, whereas PP1R3 regulates TOPP activity and localization in ABA signaling [9]-[13]. TOPPs are therefore better viewed as catalytic components of regulated phosphatase complexes than as enzymes with fixed substrate repertoires.

Several experimentally validated substrates now anchor this model. TOPP4 dephosphorylates DELLA repressors in gibberellin signaling, PIN1 during pavement-cell morphogenesis, and PIF5 in red-light responses [14]-[16]. TOPP1 and its regulatory proteins modulate SnRK2-mediated ABA signaling [9] [17]. In contrast, TOPP1, TOPP4, and TOPP5 directly dephosphorylate EIN2 at Ser655, thereby stabilizing EIN2 and promoting nuclear accumulation of its C-terminal domain [12]. TOPPs also function in autophagy and immunity. During fixed-carbon starvation, TOPP4 directly dephosphorylates ATG13a in vitro, while TOPP1, TOPP3, and TOPP9 also reduce ATG13a phosphorylation in planta; higher-order mutant phenotypes demonstrate broader TOPP-family redundancy in autophagy [11]. Higher-order topp mutants display enhanced defense responses to Pseudomonas syringae, whereas the dominant-negative topp4-1 allele (TOPP4T246M) activates SUT1-dependent autoimmunity [10] [18]. In heterologous assays, SUT1 activation requires mutant rather than wild-type TOPP4 and depends on plasma-membrane localization [19]. Conversely, the bacterial effector AvrE binds and inhibits TOPPs, thereby enhancing ABA signaling and water soaking [20].

This article is a narrative review focused primarily on experimental studies of TYPE ONE PROTEIN PHOSPHATASES in Arabidopsis thaliana (Table 1). We prioritized primary studies providing genetic, biochemical, protein-protein interaction, phosphosite, or subcellular-localization evidence for TOPP function, with particular emphasis on experimentally supported substrates, regulatory partners, and signaling outputs. Throughout this review, “direct substrate” is reserved for proteins for which TOPP-dependent dephosphorylation has been demonstrated biochemically or in planta; “physical association” denotes experimentally demonstrated interaction or colocalization without direct proof of dephosphorylation; and “genetic association” denotes pathway involvement inferred primarily from mutant, overexpression, or epistasis analyses. These categories are applied throughout to avoid conflating family-level genetic redundancy with isoform-specific catalytic activity.

Table 1. Experimentally supported TOPP-centered signaling modules in Arabidopsis.

Pathway/process

TOPP component (s)

Target/evidence level

Regulatory effect

Biological output

Key reference

Gibberellin signaling

TOPP4

RGA, GAI (DELLAs): direct substrates

Direct dephosphorylation; promotes DELLA turnover

GA-responsive growth

[14]

Auxin-dependent morphogenesis

TOPP4

PIN1: direct substrate

Direct dephosphorylation; controls polarity and trafficking

Pavement-cell interdigitation

[15]

Photomorphogenesis

TOPP4

PIF5: direct substrate

Direct dephosphorylation; limits red-light-induced ubiquitin-mediated degradation

Red-light seedling development; tunes hypocotyl elongation and hook/cotyledon opening

[16]

ABA signaling

TOPP1; multiple TOPPs

SnRK2s: physical association with TOPP1 and biochemical suppression of kinase activity; PP1R3-regulated complexes

Suppresses SnRK2 activity; localization-dependent regulation

ABA and salt responses

[9] [17]

Ethylene signaling

TOPP1, TOPP4, and TOPP5

EIN2 Ser655: direct substrate

Site-specific dephosphorylation; stabilizes EIN2 and promotes CEND nuclear accumulation

Ethylene response and salt tolerance

[12]

Fixed-carbon starvation

TOPP4; TOPP1, TOPP3, and TOPP9; higher-order topp mutants

ATG13a: direct dephosphorylation by TOPP4 in vitro; additional in planta isoform support

ATG13a dephosphorylation promotes ATG1a-ATG13a assembly; higher-order mutants support broader redundancy

Autophagy and starvation tolerance

[11]

Basal immunity

Multiple TOPPs

MAPK-associated defense network: physical/genetic association

Restrains defense signaling

SA-dependent defense and bacterial resistance

[10]

NLR surveillance

TOPP4T246M/mutant TOPP4 states

SUT1: physical and genetic association

Aberrant TOPP4 activatesSUT1-dependent cell death

Autoimmune surveillance

[18] [19]

Pathogen virulence

Multiple TOPPs

AvrE effector: physical association with TOPPs

AvrE binds and inhibits TOPPs, enhancing ABA signaling

Stomatal closure and water soaking

[20]

Here, we synthesize these findings around three recurring features of TOPP biology: partial redundancy, partner-dependent substrate selection, and spatial control. We also outline the major experimental gaps and consider how pathway-specific TOPP interactions might be exploited without broadly disrupting phosphatase function.

2. Catalytic Conservation, Partial Redundancy, and Context-Dependent Specificity

At the catalytic level, TOPPs belong to the phosphoprotein phosphatase (PPP) superfamily of serine/threonine phosphatases [6]-[8]. Their catalytic cores contain highly conserved residues required for metal coordination and phosphoester hydrolysis, placing strong evolutionary constraints on variation within the active site [21] [22]. Functional diversification is therefore more likely to arise from differences in expression, localization, and interaction surfaces. This view is consistent with canonical PP1 systems, in which regulatory proteins control localization, substrate access, and enzyme activity [8] [22]. In Arabidopsis, AtI-2 inhibits multiple TOPPs, whereas PP1R3 associates with TOPPs and affects both their activity and nuclear localization [9] [13]. Thus, catalytic sequence alone is unlikely to predict TOPP substrate specificity. Although AtI-2 inhibits TOPP catalytic activity toward a generic phosphatase substrate in vitro, it can enhance TOPP1-mediated suppression of SnRK2s by promoting TOPP1-SnRK2 association. Thus, the apparently divergent effects are best interpreted as substrate- and assay-context dependent, while the contribution of complex composition and localization in vivo remains unresolved [17].

Consistent with this conserved catalytic framework, functional overlap is evident across several pathways. Septuple and octuple topp mutants were required to reveal pronounced defects in fixed-carbon starvation-induced autophagy [11], and the topp1 topp4 topp5 triple mutant, unlike the corresponding single mutants, displays partial ethylene insensitivity [12]. Higher-order mutants likewise uncovered roles in ABA signaling and immunity [9] [10]. Redundancy is therefore an intrinsic feature of the family and likely provides robustness when individual isoforms are limiting. Nevertheless, this redundancy is incomplete: TOPP4 repeatedly appears in DELLA-, PIN1-, PIF5-, and SUT1-associated pathways. The available evidence is thus best described as shared catalytic capacity combined with context-dependent specialization.

Catalytic similarity, however, does not translate into indiscriminate activity in vivo. Instead, three mechanisms appear to narrow TOPP activity. Regulatory proteins can alter enzyme activity or localization; substrate binding can recruit TOPPs to particular phosphoproteins; and compartmentalization restricts substrate accessibility. DELLA proteins, PIN1, PIF5, and EIN2 have direct biochemical dephosphorylation evidence, while ATG13a is a direct TOPP4 substrate with additional isoform-level support as detailed below [11] [12] [14]-[16]. SnRK2s and immune MAPK components are described separately where the evidence is primarily physical, functional, or genetic. AtI-2 and PP1R3 illustrate regulatory-protein control [9] [13] [17]. Spatial regulation is best documented in ABA signaling. PP1R3 and TOPPs are present in both the nucleus and cytoplasm; ABA increases the cytoplasmic pools of TOPP1 and TOPP4; and altering TOPP4 nuclear localization changes ABA-related phenotypes [9]. Whether comparable stimulus-dependent redistribution operates in other TOPP pathways remains to be tested directly.

3. Developmental and Hormonal Functions of TOPPs

Among developmental and hormonal pathways, gibberellin signaling provides a clear example of TOPP function. Gibberellins promote seed germination, stem elongation, flowering, and other developmental processes largely by reducing the abundance and activity of DELLA growth repressors. GA-bound GID1 receptors facilitate recruitment of DELLAs to SCF ubiquitin ligase complexes, leading to proteasome-dependent degradation. TOPP4 adds a phosphorylation-dependent layer to this canonical pathway. It physically interacts with the DELLA proteins RGA and GAI and directly dephosphorylates them. The phosphorylation state of these repressors is associated with their stability, and impaired TOPP4 activity causes DELLA accumulation and reduced GA responsiveness [14] (Figure 1(A)). Thus, TOPP4-mediated dephosphorylation is linked to DELLA turnover rather than simply terminating GA signaling. The kinases and individual phosphosites that establish this balance remain incompletely resolved.

Beyond gibberellin signaling, TOPP4 also influences auxin-dependent morphogenesis. Auxin transport depends on the polarized localization of PIN-FORMED efflux carriers. In Arabidopsis leaf pavement cells, TOPP4 functions in the same developmental context as PIN1 and directly influences its phosphorylation state. Genetic, interaction, colocalization, and biochemical analyses showed that TOPP4 antagonizes PINOID-dependent phosphorylation of PIN1, thereby regulating PIN1 polarity and endocytic trafficking [15] (Figure 1(B)). The resulting changes in auxin distribution and ROP-dependent cytoskeletal organization alter pavement-cell interdigitation. In this context, the principal consequence of dephosphorylation is a change in where PIN1 functions rather than a simple change in protein abundance.

Figure 1. TOPP-mediated regulation of hormone and light signaling in Arabidopsis thaliana. (A) TOPP4 dephosphorylates DELLA proteins to promote their degradation and GA-dependent growth. (B) TOPP4 dephosphorylates PIN1, regulating its polarity and auxin-dependent pavement-cell morphogenesis. (C) TOPP1-containing complexes physically associate with SnRK2s and suppress their kinase activity to attenuate ABA signaling. (D) TOPP1, TOPP4, and TOPP5 dephosphorylate EIN2 at Ser655, stabilizing EIN2 and promoting EIN3/EIL1-dependent ethylene signaling and positive feedback. (E) TOPP4 dephosphorylates and stabilizes PIF5, counterbalancing phyB-dependent PIF5 turnover and attenuating red-light responses during photomorphogenesis.

TOPP regulation also extends to ABA signaling. Although PP2C phosphatases are canonical components of ABA perception, TOPP-dependent mechanisms provide an additional phosphatase layer. TOPP1 interacts with SnRK2 kinases and PYL ABA receptors and suppresses SnRK2 kinase activity. AtI-2 associates with TOPP1 and, although it reduces TOPP1 activity toward a generic phosphatase substrate in vitro, it enhances TOPP1-mediated suppression of SnRK2s, likely by promoting TOPP1-SnRK2 interaction [17]. This apparent difference is therefore best interpreted as assay- and substrate-context dependent; whether complex composition or localization further modulates this effect in vivo remains unresolved. Consistent with this biochemical activity, topp1 and ati-2 mutants display enhanced sensitivity to ABA and salt, together with increased expression of ABA-responsive genes [17]. PP1R3 further illustrates how regulatory subunits can diversify TOPP behavior. PP1R3 interacts with TOPPs, inhibits their enzymatic activity, and promotes nuclear localization of TOPP4. Genetic analyses indicate that PP1R3 and TOPPs jointly regulate ABA responses, whereas localization experiments show that nuclear versus cytoplasmic distribution contributes to pathway output [9] (Figure 1(C)). These findings support the view that the relevant signaling unit is a regulated TOPP complex rather than an isolated catalytic subunit.

Ethylene signaling provides another example of coordinated TOPP action. In Arabidopsis, ethylene induces the expression of several TOPP genes, with particularly strong functional evidence for TOPP1, TOPP4, and TOPP5. The topp1 topp4 topp5 triple mutant displays partial ethylene insensitivity and reduced EIN3 protein accumulation, whereas TOPP overexpression enhances ethylene responses. TOPP1, TOPP4, and TOPP5 interact with the EIN2 C-terminal domain and directly dephosphorylate EIN2, primarily at Ser655. This modification stabilizes EIN2 and promotes nuclear accumulation of its C-terminal signaling domain, thereby strengthening EIN3/EIL1-dependent transcription. In turn, EIN3/EIL1 binds TOPP promoters and increases TOPP expression, forming a positive-feedback loop [12] (Figure 1(D)). A phospho-deficient EIN2S655A allele also enhances ethylene output and salt tolerance, linking this phosphosite to stress adaptation.

A mechanistically distinct role emerges in red-light signaling. Red-light-activated phytochrome B promotes the phosphorylation and degradation of phytochrome-interacting factors, including PIF5. TOPP4 physically interacts with PIF5, directly dephosphorylates it, and reduces its red-light-induced ubiquitination and degradation [16] (Figure 1(E)). By stabilizing PIF5, TOPP4 attenuates phyB-dependent red-light responses, promoting hypocotyl elongation and modulating apical-hook and cotyledon opening. Thus, TOPP4 counterbalances rather than contradicts phyB-dependent PIF5 turnover, tuning the magnitude and duration of PIF5 depletion during photomorphogenesis. This contrasts with the DELLA pathway, in which TOPP4-dependent dephosphorylation is associated with destabilization, underscoring that the consequence of phosphate removal depends on the substrate and its surrounding regulatory machinery.

4. TOPPs in Metabolic Adaptation and Autophagy

Metabolic adaptation further illustrates the importance of TOPP redundancy. Autophagy supports nutrient recycling during starvation. In Arabidopsis, ATG13 is highly phosphorylated under nutrient-rich conditions but is rapidly dephosphorylated after carbon deprivation. Higher-order topp mutants exhibit impaired autophagy and reduced tolerance to fixed-carbon starvation, identifying TOPPs as major regulators of this transition [11] (Figure 2(A)). The requirement for septuple and octuple mutants provides strong evidence for functional overlap among TOPP isoforms in autophagy and illustrates why single-gene analyses can underestimate family-level phosphatase functions. Mechanistically, this starvation response converges on ATG13a. TOPP4 was directly shown to dephosphorylate ATG13a in vitro, while coexpression assays showed reduced ATG13a phosphorylation with TOPP1, TOPP3, and TOPP9 in planta [11]. These isoform-specific data should be distinguished from the septuple and octuple mutant phenotypes, which establish broader family-level genetic redundancy but do not demonstrate direct ATG13a dephosphorylation by every TOPP isoform. At least 18 phosphorylation sites have been identified in ATG13a. An alanine-substituted phospho-dead ATG13a variant enhances autophagy and starvation tolerance. TOPP-dependent ATG13a dephosphorylation promotes formation of the ATG1a-ATG13a complex and is accompanied by increased ATG1a phosphorylation, although TOPP4 does not directly dephosphorylate ATG1a [11] (Figure 2(B)). Thus, phosphate removal from ATG13a activates rather than suppresses the pathway by favoring assembly of the autophagy-initiation complex. The upstream signal that recruits or activates TOPPs during carbon starvation remains unknown.

Figure 2. Carbon starvation-induced TOPP-mediated activation of the ATG1-ATG13 complex. (A) Carbon starvation triggers metabolic reprogramming and activates upstream autophagy regulators. (B) Starvation engages TOPP-dependent ATG13a dephosphorylation; TOPP4 has direct in vitro evidence, while TOPP1, TOPP3, and TOPP9 are additionally supported by in planta coexpression assays, promoting ATG1 - ATG13 complex activation.

5. TOPPs in Immune Homeostasis and Pathogen Interaction

In immune homeostasis, Arabidopsis TOPPs generally restrain basal immune activity. The dominant-negative topp4-1 mutant exhibits constitutive defense-associated phenotypes, whereas a topp1 topp4 topp5 topp6 topp7 topp8 topp9 septuple mutant shows elevated defense-gene expression and enhanced resistance to Pseudomonas syringae pv. tomato DC3000. TOPPs also physically interact with MAPKs and influence MAPK-associated downstream defense responses [10] (Figure 3(A)). Suppressor screening identified SUT1, a coiled-coil nucleotide-binding leucine-rich-repeat receptor (CNL), as essential for topp4-1-induced autoimmunity. SUT1 interacts with both wild-type and mutant TOPP4, but genetic evidence indicates that the aberrant TOPP4 state activates SUT1-dependent immunity [18] (Figure 3(B)). These observations are consistent with a guard-type mechanism in which SUT1 monitors TOPP4 or a TOPP4-associated complex. They do not demonstrate that normal fluctuations in TOPP4 catalytic activity are sufficient to trigger SUT1, and the molecular feature of mutant TOPP4 that is sensed remains unresolved. Importantly, SUT1-dependent surveillance is also spatially constrained. Heterologous assays further showed that SUT1 induces strong cell death in the presence of TOPP4T246M and other mutant TOPP4 proteins, but not wild-type TOPP4. SUT1 associates with the plasma membrane; substitutions at Gly2, Cys4, or Ser6 disrupt membrane localization and abolish cell-death activity, whereas artificial membrane anchoring restores activity to localization-defective variants [19] (Figure 3(B)). These results establish localization as a functional component of SUT1 signaling. Whether Arabidopsis SUT1 directly senses a membrane-associated TOPP4 complex, an altered guardee, or a downstream consequence of TOPP4 perturbation remains unknown.

Figure 3. Proposed model of TOPP-mediated regulation of plant immunity. (A) TOPPs negatively regulate MAPK-dependent defense signaling. (B) SUT1 monitors TOPP4 integrity and activates immunity upon TOPP4 impairment. (C) Pathogen effectors target TOPPs to manipulate host ABA signaling and promote bacterial colonization.

Conversely, TOPPs can be exploited by pathogens. The Pseudomonas syringae type III effector AvrE binds Arabidopsis TOPPs and inhibits their function. Because TOPPs negatively regulate ABA signaling through SnRK2-associated mechanisms [9] [17], AvrE-mediated TOPP inhibition increases ABA responses, promotes stomatal closure, and contributes to the formation of an aqueous apoplast that favors bacterial proliferation [20] (Figure 3(C)). This finding lends broader biological plausibility to the SUT1 guard model [18] [19]. If microbial effectors manipulate TOPP-centered signaling, host surveillance of altered TOPP states could provide a means of detecting virulence activity. However, direct mechanistic links between AvrE-dependent TOPP inhibition and SUT1 activation have not been established and should not be assumed.

6. Discussion

Although considerable progress has been made in defining the biological functions of Arabidopsis TOPPs, current evidence also highlights several unresolved questions. A recurring theme of this review is that catalytic conservation alone cannot explain the substantial functional diversity of TOPP phosphatases. More broadly, studies of plant PPP-family phosphatases indicate that signaling specificity can be generated through regulatory subunits, protein-protein interactions, substrate recruitment, and subcellular compartmentalization rather than through extensive diversification of the catalytic core [8] [9] [13] [17] [23]. In the TOPP family, this principle is supported by the distinct involvement of TOPP-containing complexes in gibberellin, auxin, light, ABA, ethylene, autophagy, and immune signaling [9] [11] [12] [14]-[17]. At the same time, the strong phenotypes of higher-order topp mutants demonstrate extensive genetic redundancy, whereas the recurrent involvement of TOPP4 in multiple developmental and immune processes points to context-dependent specialization [10]-[12]. This framework therefore reconciles the apparent contradiction between catalytic conservation and functional diversification. Nevertheless, whether individual TOPP isoforms possess intrinsic substrate preferences or function primarily through distinct regulatory complexes remains largely unresolved.

A second major challenge is the limited identification of direct substrates and phosphorylation sites. Several proteins, including DELLA repressors, PIN1, PIF5, and EIN2, have direct biochemical support as TOPP substrates, whereas ATG13a has direct in vitro dephosphorylation evidence for TOPP4 together with additional in planta support for TOPP1, TOPP3, and TOPP9 [11] [12] [14]-[16]. Nevertheless, many TOPP-associated signaling pathways remain supported primarily by genetic interactions or physical associations rather than by direct biochemical demonstration of phosphosite dephosphorylation. This limitation is particularly evident in plant immunity, where TOPPs interact with MAPKs and influence MAPK-associated defense outputs, but the corresponding direct immune substrates and target phosphosites remain largely undefined [10]. Quantitative phosphoproteomics provides a powerful framework for monitoring dynamic phosphorylation changes and identifying candidate regulatory sites, although biochemical validation remains necessary to distinguish direct phosphatase substrates from downstream signaling effects [24] [25]. Accordingly, comprehensive phosphoproteomic profiling combined with TOPP perturbation, substrate-trapping approaches, phosphosite-specific mutagenesis, and in vitro dephosphorylation assays should help define pathway-specific TOPP substrates and distinguish direct enzymatic targets from secondary signaling consequences.

The emerging relationship between TOPPs and immune surveillance represents another important conceptual advance. The requirement of SUT1 for topp4-1-associated autoimmunity, together with the preferential induction of cell death by mutant rather than wild-type TOPP4 proteins, supports a model in which SUT1 monitors an aberrant TOPP4 state or a TOPP4-associated signaling complex [18] [19]. Such a model is conceptually consistent with the broader guard paradigm of plant NLR immunity, in which intracellular immune receptors detect perturbations of host proteins or signaling nodes targeted by pathogen effectors rather than necessarily recognizing the effectors directly [26]-[28]. Meanwhile, the Pseudomonas syringae effector AvrE directly targets TOPPs, enhancing ABA-associated responses and promoting formation of an aqueous apoplast favorable for bacterial proliferation [20]. Because TOPPs themselves negatively regulate ABA signaling through SnRK2-associated mechanisms [9] [17], these findings position TOPPs at an intriguing interface between host signaling and pathogen virulence. However, AvrE-mediated TOPP inhibition has not been demonstrated to activate SUT1, and the two mechanisms should therefore remain explicitly separated. Determining whether additional pathogen effectors converge on TOPP-containing complexes, whether SUT1 senses TOPP4 itself or a modified associated component, and which molecular alterations constitute the activating signal will be important for establishing the mechanistic basis of phosphatase-centered immune surveillance.

Finally, increasing evidence indicates that TOPPs should be viewed not as isolated catalytic enzymes but as components of dynamic signaling modules whose biological outputs depend on interacting proteins, substrate availability, phosphorylation state, and intracellular localization [8] [9] [13] [17]. Resolving these modules will require approaches that integrate structural biology with quantitative phosphoproteomics, protein-interaction analysis, and spatially resolved measurements. Modern phosphoproteomic approaches allow large-scale and quantitative analysis of phosphorylation dynamics [24] [25], whereas live-cell imaging can resolve stimulus-dependent protein localization and dynamics at subcellular scales [29]. Spatial proteomics, particularly when combined with quantitative mass spectrometry and imaging, offers an additional means of defining the compartment-specific composition and dynamics of signaling complexes [30]. Integrating these approaches with genetic and biochemical analyses should clarify how TOPP regulatory partners determine substrate accessibility and signaling output. Such knowledge may ultimately enable selective manipulation of individual TOPP complexes without broadly disrupting the conserved catalytic activity shared across the family, thereby creating opportunities to modify growth, stress tolerance, and disease resistance with reduced pleiotropic effects.

7. Conclusions

Arabidopsis TOPPs constitute a highly conserved phosphatase family whose biological diversity is generated largely through context-dependent regulation rather than catalytic divergence. Across hormone signaling, photomorphogenesis, autophagy, stress adaptation, and immunity, current evidence consistently supports a model in which regulatory proteins, substrate recruitment, and subcellular localization determine TOPP specificity. Although substantial functional redundancy exists among TOPP isoforms, selected members, particularly TOPP4, repeatedly emerge as central regulators in multiple signaling pathways. These observations indicate that conserved catalytic activity is progressively refined by molecular context to generate distinct physiological outputs.

Recent advances have further expanded the biological significance of TOPPs beyond classical signal attenuation. The identification of SUT1-mediated surveillance of aberrant TOPP4 states and the exploitation of TOPPs by the bacterial effector AvrE demonstrate that TOPPs are integral components of plant immune homeostasis as well as important targets during host-pathogen interactions. Together, these findings position TOPPs at the intersection of developmental regulation, environmental adaptation, and immune signaling. Despite this progress, important questions remain regarding substrate recognition, phosphosite specificity, regulatory-complex assembly, and spatial control of TOPP activity. Addressing these issues through integrated biochemical, structural, genetic, and phosphoproteomic approaches will provide a more complete mechanistic framework for TOPP function. Such studies are expected to facilitate the development of pathway-specific strategies for improving crop growth, stress resilience, and disease resistance while minimizing the pleiotropic effects associated with global phosphatase manipulation.

Author Contributions

Conceptualization, K. C. and J. H.; Methodology, K. C. and J. H.; Formal Analysis, K. C. and J. H.; Investigation, K. C. and J. H.; Resources, K. C. and J. H.; Writing—Original Draft Preparation, K. C.; Writing—Review and Editing, J. H.; Supervision, K. C. and J. H. All authors have read and agreed to the published version of the manuscript.

Funding

This study was funded by the teaching and research start-up funds from Kai Chen, and Jiangxi Provincial Natural Science Foundation (Grant No. 20252BAC200384) from Jianzhong Huang.

NOTES

*Corresponding author.

Conflicts of Interest

The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this article.

References

[1] Li, P. and Liu, J. (2021) Protein Phosphorylation in Plant Cell Signaling. In: Wu, X.N., Ed., Plant Phosphoproteomics, Springer US, 45-71.[CrossRef] [PubMed]
[2] Zhang, W.J., Zhou, Y., Zhang, Y., Su, Y.H. and Xu, T. (2023) Protein Phosphorylation: A Molecular Switch in Plant Signaling. Cell Reports, 42, Article ID: 112729.[CrossRef] [PubMed]
[3] Bollen, M., Peti, W., Ragusa, M.J. and Beullens, M. (2010) The Extended PP1 Toolkit: Designed to Create Specificity. Trends in Biochemical Sciences, 35, 450-458.[CrossRef] [PubMed]
[4] Peti, W., Nairn, A.C. and Page, R. (2013) Structural Basis for Protein Phosphatase 1 Regulation and Specificity. The FEBS Journal, 280, 596-611.[CrossRef] [PubMed]
[5] Brautigan, D.L. and Shenolikar, S. (2018) Protein Serine/Threonine Phosphatases: Keys to Unlocking Regulators and Substrates. Annual Review of Biochemistry, 87, 921-964.[CrossRef] [PubMed]
[6] Smith, R.D. and Walker, J.C. (1993) Expression of Multiple Type 1 Phosphoprotein Phosphatases in Arabidopsis thaliana. Plant Molecular Biology, 21, 307-316.[CrossRef] [PubMed]
[7] Farkas, I., Dombrádi, V., Miskei, M., Szabados, L. and Koncz, C. (2007) Arabidopsis PPP Family of Serine/Threonine Phosphatases. Trends in Plant Science, 12, 169-176.[CrossRef] [PubMed]
[8] Uhrig, R.G., Labandera, A. and Moorhead, G.B. (2013) Arabidopsis PPP Family of Serine/Threonine Protein Phosphatases: Many Targets but Few Engines. Trends in Plant Science, 18, 505-513.[CrossRef] [PubMed]
[9] Zhang, J., Qin, Q., Nan, X., Guo, Z., Liu, Y., Jadoon, S., et al. (2020) Role of Protein Phosphatase1 Regulatory Subunit3 in Mediating the Abscisic Acid Response. Plant Physiology, 184, 1317-1332.[CrossRef] [PubMed]
[10] Liu, Y., Yan, J., Qin, Q., Zhang, J., Chen, Y., Zhao, L., et al. (2020) Type One Protein Phosphatases (TOPPs) Contribute to the Plant Defense Response in Arabidopsis. Journal of Integrative Plant Biology, 62, 360-377.[CrossRef] [PubMed]
[11] Wang, Q., Qin, Q., Su, M., Li, N., Zhang, J., Liu, Y., et al. (2022) Type One Protein Phosphatase Regulates Fixed-Carbon Starvation-Induced Autophagy in Arabidopsis. The Plant Cell, 34, 4531-4553.[CrossRef] [PubMed]
[12] Su, M., Qin, Q., Zhang, J., Li, Y., Ye, A., Wang, S., et al. (2026) Type One Protein Phosphatases (TOPPs) Catalyze EIN2 Dephosphorylation to Regulate Ethylene Signaling in Arabidopsis. Science Advances, 12, eaec5937.[CrossRef]
[13] Templeton, G.W., Nimick, M., Morrice, N., Campbell, D., Goudreault, M., Gingras, A., et al. (2011) Identification and Characterization of Ati-2, an Arabidopsis Homologue of an Ancient Protein Phosphatase 1 (PP1) Regulatory Subunit. Biochemical Journal, 435, 73-83.[CrossRef] [PubMed]
[14] Qin, Q., Wang, W., Guo, X., Yue, J., Huang, Y., Xu, X., et al. (2014) Arabidopsis DELLA Protein Degradation Is Controlled by a Type-One Protein Phosphatase, TOPP4. PLOS Genetics, 10, e1004464.[CrossRef] [PubMed]
[15] Guo, X., Qin, Q., Yan, J., Niu, Y., Huang, B., Guan, L., et al. (2015) TYPE-ONE PROTEIN PHOSPHATASE4 Regulates Pavement Cell Interdigitation by Modulating PIN-FORMED1 Polarity and Trafficking in Arabidopsis. Plant Physiology, 167, 1058-1075.[CrossRef] [PubMed]
[16] Yue, J., Qin, Q., Meng, S., Jing, H., Gou, X., Li, J., et al. (2016) TOPP4 Regulates the Stability of PHYTOCHROME INTERACTING FACTOR5 during Photomorphogenesis in Arabidopsis. Plant Physiology, 170, 1381-1397.[CrossRef] [PubMed]
[17] Hou, Y., Zhu, Y., Wang, P., Zhao, Y., Xie, S., Batelli, G., et al. (2016) Type One Protein Phosphatase 1 and Its Regulatory Protein Inhibitor 2 Negatively Regulate ABA Signaling. PLOS Genetics, 12, e1005835.[CrossRef] [PubMed]
[18] Yan, J., Liu, Y., Huang, X., Li, L., Hu, Z., Zhang, J., et al. (2019) An Unreported NB-LRR Protein SUT1 Is Required for the Autoimmune Response Mediated by Type One Protein Phosphatase 4 Mutation (TOPP4‐1) in Arabidopsis. The Plant Journal, 100, 357-373.[CrossRef] [PubMed]
[19] Huang, J., Wu, X., Chen, K. and Gao, Z. (2026) Dissection of Cell Death Induction by Arabidopsis thaliana CC-NBS-LRR Receptor SUT1 and Its Interacting Protein TOPP4 Mutant in Nicotiana Benthamiana. Life, 16, Article No. 227.[CrossRef]
[20] Hu, Y., Ding, Y., Cai, B., Qin, X., Wu, J., Yuan, M., et al. (2022) Bacterial Effectors Manipulate Plant Abscisic Acid Signaling for Creation of an Aqueous Apoplast. Cell Host & Microbe, 30, 518-529.e6.[CrossRef] [PubMed]
[21] Shi, Y. (2009) Serine/Threonine Phosphatases: Mechanism through Structure. Cell, 139, 468-484.[CrossRef] [PubMed]
[22] Nguyen, H. and Kettenbach, A.N. (2023) Substrate and Phosphorylation Site Selection by Phosphoprotein Phosphatases. Trends in Biochemical Sciences, 48, 713-725.[CrossRef] [PubMed]
[23] Schweighofer, A. and Meskiene, I. (2015) Phosphatases in Plants. In: Schulze, W.X., Ed., Plant Phosphoproteomics, Springer, 25-46.[CrossRef] [PubMed]
[24] Kline-Jonakin, K.G., Barrett-Wilt, G.A. and Sussman, M.R. (2011) Quantitative Plant Phosphoproteomics. Current Opinion in Plant Biology, 14, 507-511.[CrossRef] [PubMed]
[25] Subba, P. and Prasad, T.S.K. (2021) Plant Phosphoproteomics: Known Knowns, Known Unknowns, and Unknown Unknowns of an Emerging Systems Science Frontier. OMICS: A Journal of Integrative Biology, 25, 750-769.[CrossRef] [PubMed]
[26] Zhang, B., Liu, M., Wang, Y., Yuan, W. and Zhang, H. (2022) Plant NLRs: Evolving with Pathogen Effectors and Engineerable to Improve Resistance. Frontiers in Microbiology, 13, Article ID: 1018504.[CrossRef] [PubMed]
[27] Wang, J., Song, W. and Chai, J. (2023) Structure, Biochemical Function, and Signaling Mechanism of Plant NLRs. Molecular Plant, 16, 75-95.[CrossRef] [PubMed]
[28] Huang, S., Jia, A., Ma, S., Sun, Y., Chang, X., Han, Z., et al. (2023) NLR Signaling in Plants: From Resistosomes to Second Messengers. Trends in Biochemical Sciences, 48, 776-787.[CrossRef] [PubMed]
[29] Colin, L., Martin-Arevalillo, R., Bovio, S., Bauer, A., Vernoux, T., Caillaud, M., et al. (2022) Imaging the Living Plant Cell: From Probes to Quantification. The Plant Cell, 34, 247-272.[CrossRef] [PubMed]
[30] Zhang, L., Liang, X., Takáč, T., Komis, G., Li, X., Zhang, Y., et al. (2023) Spatial Proteomics of Vesicular Trafficking: Coupling Mass Spectrometry and Imaging Approaches in Membrane Biology. Plant Biotechnology Journal, 21, 250-269.[CrossRef] [PubMed]

Copyright © 2026 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.