Phytocytokines are endogenous peptides that modulate plant immunity outcomes, yet how their maturation and spatial deployment are controlled remains unclear. Here we show that the maize phytocytokine precursor PROZIP1 is controlled by a spatially separated, 2-stage proteolytic pathway that mechanistically uncouples signal activation from extracellular attenuation. PROZIP1 associates with the endoplasmic reticulum (ER) and undergoes intracellular, arginine-dependent processing by Type II metacaspases (MCAs), generating a C-terminal PROZIP1 fragment (Ct-PROZIP1). This processing licenses PROZIP1 for export to the apoplast via an ER-Golgi-independent route. Proteomic mapping and mutational analyses identify arginine residues flanking the Zip1 peptide as critical for efficient processing and secretion. The calcium-dependent MCA ZmMC9 specifically processes PROZIP1, thereby efficiently generating the bioactive Ct-PROZIP1 fragment. In the apoplast, Ct-PROZIP1 is further processed by papain-like cysteine proteases and additional extracellular proteases, contributing to Zip1 turnover and signal clearance. While the free Zip1 peptide is detected at later stages, Ct-PROZIP appears to be the primary signaling entity in modulating pathogen-induced immune responses. Together, these findings demonstrate a previously unknown complexity in peptide signaling, suggesting a multilayered control of phytocytokine activity that provides spatial and temporal precision to disease modulation in maize.
Abstract The survival of eukaryotes during starvation depends on effective nutrient recycling via autophagy. Accordingly, loss of autophagy-related (ATG) proteins, including the nutrient-sensing ATG1 kinase complex, typically results in reduced fitness or lethality under nutrient limitation. The green alga Chlamydomonas reinhardtii provides a tractable model for autophagy studies, as its ATG repertoire is encoded by single-copy genes. Here, we generated a comprehensive library of ATG deletion mutants and examined their growth and autophagy during starvation. Surprisingly, starvation-induced autophagy occurred in the absence of ATG1 complex components (ATG1, ATG11, ATG13, and ATG101), revealing ATG1-independent autophagy and challenging the canonical model for autophagy initiation.
Abstract Changes in intracellular calcium ion (Ca²⁺) concentrations generate characteristic signatures that are decoded by specialized Ca²⁺-binding proteins (CaBP). Although substantial progress has been made in understanding cytosolic calcium signaling pathways, calcium signaling within organelles, particularly chloroplasts, remains poorly understood, partly because only a few EF-hand CaBP have been identified in organelles. Here, we describe a novel EF-hand protein of 18 kDa, that was found to be associated with the chloroplast envelope and peroxisomal membrane and was therefore named OEF18 (ORGANELLAR EF-HAND PROTEIN OF 18 kDa). OEF18 has a very unusual structure, containing an N-terminal myristoylation site, followed by one EF-hand in the N-terminus facing to the cytosol, and a transmembrane domain in the C-terminus. OEF18 membrane-targeting was found to be mediated by ANKYRIN REPEAT-CONTAINING PROTEIN 2A (AKR2A) via the C-terminal transmembrane domain of OEF18. Furthermore, the EF-hand in OEF18 bound Ca²⁺ at a physiological concentration that led to a large protein conformational change, inducing oligomerization of the N-terminal part. We found that oef18 mutants accumulated less jasmonic acid (JA) and its bioactive conjugate JA-Ile, likely causing a defect in the insect herbivore response. Wild-type OEF18 complemented the herbivory phenotype of oef18 mutants, whereas an EF-hand point mutant lacking Ca²⁺-binding capacity failed to restore the wild-type response. Furthermore, OEF18 was required for resistance to salt stress in combination with dark-induced senescence. Together, these results establish OEF18 as a previously unrecognized organellar Ca²⁺ sensor that couples Ca²⁺ perception to JA-mediated defense and abiotic stress responses in plants.
Proteolysis is a universal process, as proteases play a pivotal role in modulating numerous signaling pathways. Proteases control the fate and function of their target proteins by hydrolyzing peptide bonds within these proteins. Understanding the temporal and spatial dynamics of proteolytic events, including the proteases that execute them, is crucial for elucidating their particular roles across diverse biological processes. In this study, we developed and characterized a set of genetically encoded Förster resonance energy transfer (FRET)-based reporters for the detection of various proteolytic activities in plants. Our sensors reliably reported the activity of specific proteases, exhibiting a performance comparable to previously established detection systems. In addition, we engineered variants capable of detecting the spatial dynamics of metacaspase-triggered proteolysis after wounding and during programmed cell death in roots. We demonstrated the feasibility of these FRET-based sensors for detecting various activities in vivo with high spatiotemporal resolution. The implementation of these tools in plant research opens opportunities to explore proteolytic mechanisms with enhanced precision. Overall, these biosensors constitute a versatile toolbox for probing protease function within its native cellular context, paving the way for deeper insights into plant biology and signaling.
Phytocytokines are peptide signaling molecules in plant immunity. Extracellular phytocytokines and their cognate membrane-receptors have been described in various species; however, processing and release of these signals remains largely unknown. The Zea mays immune peptide 1 (Zip1) is a maize-specific phytocytokine, which is associated to the salicylic acid (SA) signaling pathway. Zip1 resides central in its precursor PROZIP1, thus C- and N-terminal cleavage is required to release bioactive Zip1 peptide. Two apoplastic maize PLCPs, CP1 and CP2, were previously shown to cleave PROZIP1. We investigated the localization and processing steps of PROZIP1 leading to Zip1 release and found that PROZIP1 undergoes processing in the endoplasmic reticulum (ER) and cytoplasm, where the N-terminal PROZIP1 is cleaved. C-terminal PROZIP1 translocates to the apoplast via an unconventional secretion pathway, likely involving exocyst-positive organelles (EXPO). The combination of antibody detection, protease cleavage assays and mass spectrometry provided evidence for a proteolytic cascade, in which intracellular processing of PROZIP1 is executed by the calcium-dependent metacaspases ZmMC9 through arginine-dependent cleavage. After secretion, C-terminal PROZIP1 is processed by apoplastic PLCPs, which release, but also degrade the Zip1 peptide. Together, these findings reveal a two-step mechanism of phytocytokine processing, translocation, activation and clearance. ### Competing Interest Statement The authors have declared no competing interest. Deutsche Forschungsgemeinschaft, CEPLAS, EXC 2048/1project ID: 390686111, DO 1421/5-2, SFB1403 (project no. 414786233)
Intracellular recycling via autophagy is governed by post-translational modifications of the autophagy-related (ATG) proteins. One notable example is ATG4-dependent delipidation of ATG8, a process that plays critical but distinct roles in autophagosome formation in yeast and mammals. Here, we aim to elucidate the specific contribution of this process to autophagosome formation in species representative of evolutionarily distant green plant lineages: unicellular green alga Chlamydomonas reinhardtii, with a relatively simple set of ATG genes, and a vascular plant Arabidopsis thaliana, harboring expanded ATG gene families. Remarkably, the more complex autophagy machinery of Arabidopsis renders ATG8 delipidation entirely dispensable for the maturation of autophagosomes, autophagic flux, and related stress tolerance; whereas autophagy in Chlamydomonas strictly depends on the ATG4-mediated delipidation of ATG8. Importantly, we also demonstrate the distinct impact of different Arabidopsis ATG8 orthologs on autophagosome formation, especially prevalent under nitrogen depletion, providing new insight into potential drivers behind the expansion of the ATG8 family in higher plants. Our findings underscore the evolutionary diversification of the molecular mechanism governing the maturation of autophagosomes in eukaryotic lineages and highlight how this conserved pathway is tailored to diverse organisms.
Plant proteases are an important class of enzymes, with proposed involvement in various aspects of the plant life cycle. However, pinpointing authentic protease-substrate interactions remains challenging, which hinders a comprehensive understanding of the biological function of proteases. Moreover, a structured set of guidelines to validate protease substrates is lacking. In this review, we outline a minimum of four key guidelines that, when followed, can confirm the specificity of protease-substrate interaction for proteases that perform limited proteolysis and with specific cleavage sites: (i) the observation of substrate cleavage; (ii) the reduction in substrate cleavage due to protease inhibitors or (iii) genetic mutation of the protease; and (iv) a final proof of the specificity of the substrate cleavage site. It is important to emphasize that these guidelines are not universally applicable to all proteases. By creating a set of guidelines, summarizing current findings and proposing future research directions, this review aims to highlight innovative techniques that will improve the specificity and accuracy of protease research and facilitate a deeper understanding of the role of proteases in plant biology.
SUMOylation is a reversible post-translational modification that contributes to various biological processes in plants. In this issue of Developmental Cell, Zhang et al. show that covalent attachment of SUMO to PROPEP proteins promotes their proteolytic cleavage by metacaspase to release small signaling peptides (plant elictor peptides [PEPs]), triggering the release of the mature peptide in response to cell wall damage.
Plants rely on water and light for photosynthesis, but water droplets on leaves can focus light into high-intensity spots, risking photodamage. Excessive light can impair growth or induce cell death, making it essential for plants to detect and respond to light fluctuations. While Ca2+ signaling has been linked to high light (HL) acclimation, the subcellular dynamics remain unclear. Here, we investigate Ca2+ responses to HL exposure in Arabidopsis thaliana. Using a glass bead to simulate light-focusing by water droplets, a biphasic increase of Ca2+ concentration was detected in the chloroplast stroma by the genetically encoded calcium indicator YC3.6 and confirmed using a newly established stroma-localized R-GECO1 (NTRC-R-GECO1). The stromal response was largely independent of light wavelength and unaffected in phot1 phot2 and cry1 cry2 mutants. Chemical inhibition of photosynthetic electron transport, microscopy-based Fv/Fm experiments, and measurement of the reactive oxygen species (ROS)-redox balance with roGFP-based reporters and Singlet Oxygen Sensor Green (SOSG) chemical dye suggested that photodamage and singlet oxygen contribute to the stromal Ca2+ response. While blue and white light also triggered a Ca2+ response in the cytosol and nucleus, pharmacological inhibition with cyclopiazonic acid (CPA) and loss-of-function mutants of the Ca2+ transporters BIVALENT CATION TRANSPORTER 2 (BICAT2) and endoplasmic reticulum (ER)-type Ca2+-ATPase (ECA) suggested that the HL response depends on a Ca2+ exchange between the ER and chloroplast stroma. The response was primarily light dependent but accelerated by increasing external temperature. This study implicates a novel Ca2+-mediated acclimation mechanism to HL stress, a process of growing relevance in the context of climate change.
Potatoes are susceptible to enzymatic browning, which affects the processing and visual quality of potato produce. The proteasome shuttle protein DSK2b was screened to be interacted with two browning-resistant protease inhibitors and DSK2b exhibited higher expression in browning-resistant potato cultivar. Further experiments found that DSK2b expression increased with browning, suggesting a potential browning-regulatory role. Therefore, the effect of DSK2b on potato browning and related mechanisms was investigated by altering DSK2b expression levels. Results showed that DSK2b-overexpression alleviated the browning of potato pulps while RNA-interference of DSK2b aggravated the phenotype. DSK2b negatively affected the free amino acid accumulation, which contributed to potato browning. Besides, DSK2b negatively regulated phenylpropanoid metabolism by modulating key enzymes of PAL, 4CL, and C4H. Concurrently, DSK2b modulated the gene expression and activities of PPO and POD. Transcriptomic and proteomic analyses revealed that DSK2b regulated potato browning, which was closely related to protease inhibitors. This study suggests that DSK2b regulates enzymatic browning in potatoes, offering a novel strategy for mitigating enzymatic browning.
Plants utilize cell surface-localized pattern recognition receptors (PRRs) and intracellular nucleotide-binding leucine-rich repeat (NLR) receptors to detect non-self and elicit robust immune responses. Fine-tuning the homeostasis of these receptors is critical to prevent their hyperactivation. Here, we show that Arabidopsis plants lacking metacaspase 1 (AtMC1) display autoimmunity dependent on immune signalling components downstream of NLR and PRR activation. Overexpression of a catalytically inactive AtMC1 in an atmc1 background triggers severe autoimmunity partially dependent on the same immune signalling components. Overexpression of the E3 ligase SNIPER1, a master regulator of NLR homeostasis, fully reverts the AtMC1-dependent autoimmunity phenotype, inferring that a broad defect in NLR turnover may underlie the severe phenotype observed. Catalytically inactive AtMC1 localizes to punctate structures that are degraded through autophagy. Considering also previous evidence on the proteostatic functions of AtMC1, we speculate that Wt AtMC1 may either directly or indirectly control NLR protein levels, thereby preventing autoimmunity.
State-of-the-art mass spectrometers combined with modern bioinformatics algorithms for peptide-to-spectrum matching (PSM) with robust statistical scoring allow for more variable features (i.e., post-translational modifications) being reliably identified from (tandem-) mass spectrometry data, often without the need for biochemical enrichment. Semi-specific proteome searches, that enforce a theoretical enzymatic digestion to solely the N- or C-terminal end, allow to identify of native protein termini or those arising from endogenous proteolytic activity (also referred to as "neo-N-termini" analysis or "N-terminomics"). Nevertheless, deriving biological meaning from these search outputs can be challenging in terms of data mining and analysis. Thus, we introduce TermineR, a data analysis approach for the (1) annotation of peptides according to their enzymatic cleavage specificity and known protein processing features, (2) differential abundance and enrichment analysis of N-terminal sequence patterns, and (3) visualization of neo-N-termini location. We illustrate the use of TermineR by applying it to tandem mass tag (TMT)-based proteomics data of a mouse model of polycystic kidney disease, and assess the semi-specific searches for biological interpretation of cleavage events and the variable contribution of proteolytic products to general protein abundance. The TermineR approach and example data are available as an R package at https://github.com/MiguelCos/TermineR.
Proteolysis, a ubiquitous process in living organisms, is driven by proteases that regulate numerous signaling pathways through the hydrolysis of peptide bonds in protein substrates. Understanding the temporal and spatial dynamics of proteolysis and the activation of proteases is crucial for elucidating their roles in biological pathways. Here, we introduce a suite of genetically encoded FRET reporters designed to detect various proteolytic activities in plants. These sensors effectively reported in planta the specific activity of both Tobacco Etch Virus protease and caspase-3. Furthermore, we developed sensors for detecting plant metacaspase activity, validated through both in vitro and in planta experiments. These experiments revealed the spatial dynamics of proteolysis triggered by metacaspase activation following wounding and programmed cell death in roots. The implementation of these tools in plant biology research opens new avenues for investigating proteolytic mechanisms, significantly enhancing the potential for in-depth studies. Our work demonstrates the feasibility of using these sensors to detect diverse protease activities in vivo with high spatiotemporal resolution. These plant proteolytic biosensors hence represent a valuable toolbox for understanding protease functions within their natural context, paving the way for future advancements in plant biology research. ### Competing Interest Statement The authors have declared no competing interest.
To survive extreme desiccation, seeds enter a period of quiescence that can last millennia. Seed quiescence involves the accumulation of protective storage proteins and lipids through unknown adjustments in protein homeostasis (proteostasis). Here, we show that mutation of all six type-II metacaspase (MCA-II) proteases in Arabidopsis thaliana disturbs proteostasis in seeds. MCA-II mutant seeds fail to restrict the AAA ATPase CELL DIVISION CYCLE 48 (CDC48) at the endoplasmic reticulum to discard misfolded proteins, compromising seed storability. Endoplasmic reticulum (ER) localization of CDC48 relies on the MCA-IIs-dependent cleavage of PUX10 (ubiquitination regulatory X domain-containing 10), the adaptor protein responsible for titrating CDC48 to lipid droplets. PUX10 cleavage enables the shuttling of CDC48 between lipid droplets and the ER, providing an important regulatory mechanism sustaining spatiotemporal proteolysis, lipid droplet dynamics, and protein homeostasis. In turn, the removal of the PUX10 adaptor in MCA-II mutant seeds partially restores proteostasis, CDC48 localization, and lipid droplet dynamics prolonging seed lifespan. Taken together, we uncover a proteolytic module conferring seed longevity.
Plants require water and light for photosynthesis, but light, when focused by water droplets on leaves, can create high light intensity spots that are harmful to plants. As excessive light intensity can reduce growth or even induce cell death, it is vital for plants to detect and react to changes in light exposure and acclimate to high light stress. Ca2+ signaling was previously implicated in high light acclimation. However, the dynamics of free Ca2+ concentration in the chloroplast, the primary site of photosynthesis, or in the nucleus and in the cytoplasm, where transcription and translation for long-term acclimation occurs, remain unknown. Here we studied the dynamics and mechanism of the Ca2+ response to high light exposure. Focusing light through a glass bead to mimic water droplets triggered an increase of the free Ca2+ concentration in the chloroplast stroma of Arabidopsis thaliana . This finding was corroborated using established and newly developed genetically encoded calcium indicators, which revealed a biphasic increase in the stromal free Ca2+ concentration when exposed to varying intensities and qualities of light. Among photosynthetic by-products, reactive oxygen and lipophilic species in particular, have been implicated in high light stress acclimation. A H2O2 signature was induced, albeit with different dynamics than the Ca2+ response, while chemical inhibition of the photosynthetic electron transport points towards singlet oxygen as a potential culprit of the high light-induced increase in stromal free Ca2+ concentration. The observed dynamics differed from those of a heat-shock induced Ca2+ signature, although temperature had a positive effect on the Ca2+ response. Based on Ca2+ inhibitor treatments and the free Ca2+ concentration dynamics, we suggest that the high light-induced stromal Ca2+ is derived from the endoplasmic reticulum rather than from the cytoplasm. In conclusion, inspired by the burning glass effect of water droplets on leaves, we uncovered a Ca2+ response that implicates a novel mechanism for plants to acclimate to high light stress—a process that will become increasingly relevant in a changing climate. ### Competing Interest Statement The authors have declared no competing interest.
Caspases are restricted to animals, while other organisms, including plants possess metacaspases (MCAs), a more ancient and broader class of structurally-related yet biochemically distinct proteases. Our current understanding of plant MCAs is derived from studies in streptophytes, and mostly in Arabidopsis expressing nine MCAs with partly redundant activities. In contrast to streptophytes, most chlorophytes contain only one or two hitherto uncharacterized MCAs, providing an excellent platform for MCA research. Here we investigate CrMCA-II, a single type II MCA from a model chlorophyte Chlamydomonas reinhardtii . Surprisingly, unlike other studied MCAs and similar to caspases, CrMCA-II dimerizes both in vitro and in vivo . Furthermore, activation of CrMCA-II in vivo correlates with the dimerization. Most of CrMCA-II in the cell is present as a zymogen attached to the plasma membrane (PM). Deletion of CrMCA-II by CRISPR/Cas9 compromises thermotolerance leading to increased cell death under heat stress. Adding back either wild-type or catalytically dead CrMCA-II restores thermoprotection, suggesting that its proteolytic activity is dispensable for this effect. Finally, we link the non-proteolytic role of CrMCA-II in thermotolerance to the ability to modulate PM fluidity. Our study reveals an ancient, MCA-dependent thermotolerance mechanism retained by Chlamydomonas and probably lost during the evolution of multicellularity.
Protein quality control is an important aspect of stress recovery. It maintains protein homeostasis through a machinery of regulatory proteins such as chaperones and proteases. When the system recognizes accumulation of misfolded or aggregated proteins, the cell recruits a set of regulatory proteins to initiate protein quality control. To understand the dynamics of stress-mediated aggregate protein formation and recovery in plants, robust methods aimed at detecting and measuring such protein aggregates are needed. This will help us to deepen our understanding of protein quality control mechanisms in plants.
In plants, proteolysis is emerging as an important field of study due to a growing understanding of the critical involvement of proteases in plant cell death, disease and development. Because proteases irreversibly modify the structure and function of their target substrates, proteolytic activities are stringently regulated at multiple levels. Most proteases are produced as dormant isoforms and only activated in specific conditions such as altered ion fluxes or by post-translational modifications. Some of the regulatory mechanisms initiating and modulating proteolytic activities are restricted in time and space, thereby ensuring precision activity, and minimizing unwanted side effects. Currently, the activation mechanisms and the substrates of only a few plant proteases have been studied in detail. Most studies focus on the role of proteases in pathogen perception and subsequent modulation of the plant reactions, including the hypersensitive response (HR). Proteases are also required for the maturation of coexpressed peptide hormones that lead essential processes within the immune response and development. Here, we review the known mechanisms for the activation of plant proteases, including post-translational modifications, together with the effects of proteinaceous inhibitors.
Metacaspases are part of an evolutionarily broad family of multifunctional cysteine proteases, involved in disease and normal development. Despite the extensive study of metacaspases in the two decades since their discovery, the structure-function relationship of metacaspases remains poorly understood. Furthermore, previous studies on their function have been thwarted by the redundancy in gene copy number and potential phenotypic suppression of genetic mutations, especially in plants. Here, we have solved the X-ray crystal structure of an Arabidopsis thaliana type II metacaspase (AtMCA-IIf) that belongs to a particular sub-group that does not require calcium ions for activation. Compared to crystal structures of other metacaspases and caspases, the AtMCA-IIf active site is structurally similar and poses a conundrum for the catalytic mechanism of the cysteine-histidine dyad. To study metacaspase activity in plants, we developed an in vitro chemical screen to identify small molecule metacaspase inhibitors. Several hits with a minimal thioxodihydropyrimidine-dione (TDP) structure were identified, some being specific inhibitors of AtMCA-IIf. We provide a mechanistic basis for inhibition by the TDP-containing compounds through molecular docking onto the AtMCA-IIf crystal structure. Finally, a TDP-containing compound (TDP6) was effective at inhibiting lateral root emergence in vivo , likely through the inhibition of metacaspases that are specifically expressed in the endodermal cells overlaying developing lateral root primordia. In the future, the small compound inhibitors and crystal structure of AtMCA-IIf can be used to study metacaspases in various other species, such as important human pathogens including those causing neglected diseases.
Metacaspases are part of an evolutionarily broad family of multifunctional cysteine pro -teases, involved in disease and normal development. As the structure-function relation-ship of metacaspases remains poorly understood, we solved the X-ray crystal structure of an Arabidopsis thaliana type II metacaspase (AtMCA-IIf) belonging to a particular subgroup not requiring calcium ions for activation. To study metacaspase activity in plants, we developed an in vitro chemical screen to identify small molecule metacaspase inhibitors and found several hits with a minimal thioxodihydropyrimidine-dione structure, of which some are specific AtMCA-IIf inhibitors. We provide mechanistic insight into the basis of inhibition by the TDP-containing compounds through molecular docking onto the AtMCA-IIf crystal structure. Finally, a TDP-containing compound (TDP6) effectively hampered lateral root emergence in vivo, probably through inhibition of metacaspases specifically expressed in the endodermal cells overlying developing lateral root primordia. In the future, the small compound inhibitors and crystal structure of AtMCA-IIf can be used to study metacaspases in other species, such as important human pathogens, including those causing neglected diseases.