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Publications (10 of 22) Show all publications
Pu, L., Zhao, L., Wang, J., Deleuze, C., Nilsson, L., Henriksson, J., . . . Chen, C. (2025). Avoidance of hydrogen sulfide is modulated by external and internal states in Caenorhabditis elegans. eLIFE, 12, Article ID RP92964.
Open this publication in new window or tab >>Avoidance of hydrogen sulfide is modulated by external and internal states in Caenorhabditis elegans
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2025 (English)In: eLIFE, E-ISSN 2050-084X, Vol. 12, article id RP92964Article in journal (Refereed) Published
Abstract [en]

Hydrogen sulfide (H2S) acts as an energy source, a toxin, and a gasotransmitter across diverse biological contexts. We use the robust locomotory responses of Caenorhabditis elegans to high levels of H2S to elucidate the molecular mechanisms underlying its acute and adaptive responses. We find that the H2S-evoked behavioral response is shaped by multiple environmental factors including oxygen (O2) levels and nutritional state and is modulated by various pathways such as insulin, TGF-β, and HIF-1 signaling, as well as by input from O2-sensing neurons. Prolonged exposure to H2S activates HIF-1 signaling, leading to the upregulation of stress-responsive genes, including those involved in H2S detoxification. This promotes an adaptive state in which locomotory speed is reduced in H2S, while responsiveness to other stimuli is preserved. In mutants deficient in HIF-1 signaling, iron storage, and detoxification mechanisms, animals display a robust initial response but rapidly enter a sleep-like behavior characterized by reduced mobility and diminished responsiveness to subsequent sensory stimuli. Furthermore, while acute production of mitochondria-derived reactive O2 species (ROS) appears to initiate the avoidance response to H2S, persistently high ROS promotes an adaptive state, likely by activating various stress-response pathways, without substantially compromising cellular H2S detoxification capacity. Taken together, our study provides comprehensive molecular insights into the mechanisms through which C. elegans modulates and adapts its response to H2S exposure.

Place, publisher, year, edition, pages
eLife Sciences Publications Ltd, 2025
National Category
Cell and Molecular Biology
Research subject
biology
Identifiers
urn:nbn:se:umu:diva-249871 (URN)10.7554/elife.92964.4 (DOI)
Funder
Swedish Research Council, 2021-06602Swedish Research Council, 2018-02216Swedish Research Council, 2024-04141EU, European Research Council, 802653
Available from: 2026-02-13 Created: 2026-02-13 Last updated: 2026-02-13Bibliographically approved
Pu, L., Wang, J., Nilsson, L., Zhao, L., Williams, C., Chi, G., . . . Chen, C. (2025). Shaker/Kv1 potassium channel SHK-1 protects against pathogen infection and oxidative stress in C. elegans. PLOS Genetics, 21(2), Article ID e1011554.
Open this publication in new window or tab >>Shaker/Kv1 potassium channel SHK-1 protects against pathogen infection and oxidative stress in C. elegans
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2025 (English)In: PLOS Genetics, ISSN 1553-7390, E-ISSN 1553-7404, Vol. 21, no 2, article id e1011554Article in journal (Refereed) Published
Abstract [en]

The Shaker/Kv1 subfamily of voltage-gated potassium (K+) channels is essential for modulating membrane excitability. Their loss results in prolonged depolarization and excessive calcium influx. These channels have also been implicated in a variety of other cellular processes, but the underlying mechanisms remain poorly understood. Through comprehensive screening of K+ channel mutants in C. elegans, we discovered that shk-1 mutants are highly susceptible to bacterial pathogen infection and oxidative stress. This vulnerability is associated with reduced glycogen levels and substantial mitochondrial dysfunction, including decreased ATP production and dysregulated mitochondrial membrane potential under stress conditions. SHK-1 is predominantly expressed and functions in body wall muscle to maintain glycogen storage and mitochondrial homeostasis. RNA-sequencing data reveal that shk-1 mutants have decreased expression of a set of cation-transporting ATPases (CATP), which are crucial for maintaining electrochemical gradients. Intriguingly, overexpressing catp-3, but not other catp genes, restores the depolarization of mitochondrial membrane potential under stress and enhances stress tolerance in shk-1 mutants. This finding suggests that increased catp-3 levels may help restore electrochemical gradients disrupted by shk-1 deficiency, thereby rescuing the phenotypes observed in shk-1 mutants. Overall, our findings highlight a critical role for SHK-1 in maintaining stress tolerance by regulating glycogen storage, mitochondrial homeostasis, and gene expression. They also provide insights into how Shaker/Kv1 channels participate in a broad range of cellular processes.

Place, publisher, year, edition, pages
Public Library of Science (PLoS), 2025
National Category
Molecular Biology Infectious Medicine Cell Biology
Identifiers
urn:nbn:se:umu:diva-235380 (URN)10.1371/journal.pgen.1011554 (DOI)001415949000001 ()39913540 (PubMedID)2-s2.0-85217033990 (Scopus ID)
Funder
Swedish Research Council, 2021-06602Swedish Research Council, 2022-06725Swedish Research Council, 2024-00409Swedish Research Council, 2022- 00981Swedish Research Council, 2018-02216Swedish Research Council, 2024-04141Swedish Cancer Society, 23 3102 PjSwedish Cancer Society, 2023-2821The Kempe Foundations, SMK21-0024The Kempe Foundations, JCSMK24-0012EU, European Research Council, 802653 OXYGEN SENSING
Available from: 2025-02-24 Created: 2025-02-24 Last updated: 2025-05-09Bibliographically approved
Pu, L., Wang, J., Lu, Q., Nilsson, L., Philbrook, A., Pandey, A., . . . Chen, C. (2023). Dissecting the genetic landscape of GPCR signaling through phenotypic profiling in  C. elegans. Nature Communications, 14, Article ID 8410.
Open this publication in new window or tab >>Dissecting the genetic landscape of GPCR signaling through phenotypic profiling in  C. elegans
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2023 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 14, article id 8410Article in journal (Refereed) Published
Abstract [en]

G protein-coupled receptors (GPCRs) mediate responses to various extracellular and intracellular cues. However, the large number of GPCR genes and their substantial functional redundancy make it challenging to systematically dissect GPCR functions in vivo. Here, we employ a CRISPR/Cas9-based approach, disrupting 1654 GPCR-encoding genes in 284 strains and mutating 152 neuropeptide-encoding genes in 38 strains in C. elegans. These two mutant libraries enable effective deorphanization of chemoreceptors, and characterization of receptors for neuropeptides in various cellular processes. Mutating a set of closely related GPCRs in a single strain permits the assignment of functions to GPCRs with functional redundancy. Our analyses identify a neuropeptide that interacts with three receptors in hypoxia-evoked locomotory responses, unveil a collection of regulators in pathogen-induced immune responses, and define receptors for the volatile food-related odorants. These results establish our GPCR and neuropeptide mutant libraries as valuable resources for the C. elegans community to expedite studies of GPCR signaling in multiple contexts.

Place, publisher, year, edition, pages
Springer Nature, 2023
National Category
Neurosciences
Identifiers
urn:nbn:se:umu:diva-217489 (URN)10.1038/s41467-023-44177-z (DOI)001127589400005 ()38110404 (PubMedID)2-s2.0-85180225404 (Scopus ID)
Funder
Swedish Research Council, 2018-02914Swedish Research Council, 2021-06602Swedish Research Council, 2018-02216
Note

Originally included in thesis in manuscript form. 

Available from: 2023-12-05 Created: 2023-12-05 Last updated: 2025-04-24Bibliographically approved
Pu, L., Zhao, L., Lu, Q. & Chen, C. (2023). Hypoxia induces food leaving in C. elegans. microPublication Biology, Article ID 000776.
Open this publication in new window or tab >>Hypoxia induces food leaving in C. elegans
2023 (English)In: microPublication Biology, ISSN 2578-9430, article id 000776Article in journal (Refereed) Published
Abstract [en]

Hypoxia alters eating behavior in different animals. In C. elegans, hypoxia induces a strong food leaving response. We found that this behavior was independent of the known O 2 response mechanisms including acute O2 sensation and HIF-1 signaling of chronic hypoxia response. Mutating egl-3 and egl-21, encoding the neuropeptide pro-protein convertase and carboxypeptidase, led to defects in hypoxia induced food leaving, suggesting that neuropeptidergic signaling was required for this response. However, we failed to identify any neuropeptide mutants that were severely defective in hypoxia induced food leaving, suggesting that multiple neuropeptides act redundantly to modulate this behavior.

Place, publisher, year, edition, pages
California Institute of Technology, 2023
National Category
Neurosciences Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-208120 (URN)10.17912/micropub.biology.000776 (DOI)37033703 (PubMedID)
Available from: 2023-05-09 Created: 2023-05-09 Last updated: 2025-02-20Bibliographically approved
Pu, L., Nilsson, L., Chen, C. & Wang, J. (2023). Iterative editing of multiple genes using CRISPR/Cas9 in C. elegans. microPublication Biology
Open this publication in new window or tab >>Iterative editing of multiple genes using CRISPR/Cas9 in C. elegans
2023 (English)In: microPublication Biology, ISSN 2578-9430Article in journal (Refereed) Published
Abstract [en]

Certain sets of genes are derived from gene duplication and share substantial sequence similarity in C. elegans, presenting a significant challenge in determining the specific roles of each gene and their collective impact on cellular processes. Here, we show that a collection of genes can be disrupted in a single animal via multiple rounds of CRISPR/Cas9 mediated genome editing. We found that up to three genes can be simultaneously disrupted in a single editing event with high efficiency. Our approach offers an opportunity to explore the genetic interaction and molecular underpinning of gene clusters with redundant function.

Place, publisher, year, edition, pages
Caltech Library, 2023
National Category
Genetics and Genomics
Identifiers
urn:nbn:se:umu:diva-217488 (URN)10.17912/micropub.biology.000898 (DOI)
Funder
Swedish Research Council, 2018-02216
Available from: 2023-12-05 Created: 2023-12-05 Last updated: 2025-02-07Bibliographically approved
Zhao, L., Fenk, L. A., Nilsson, L., Amin-Wetzel, N. P., Ramirez-Suarez, N. J., de Bono, M. & Chen, C. (2022). ROS and cGMP signaling modulate persistent escape from hypoxia in Caenorhabditis elegans. PLoS biology, 20(6), Article ID e3001684.
Open this publication in new window or tab >>ROS and cGMP signaling modulate persistent escape from hypoxia in Caenorhabditis elegans
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2022 (English)In: PLoS biology, ISSN 1544-9173, E-ISSN 1545-7885, Vol. 20, no 6, article id e3001684Article in journal (Refereed) Published
Abstract [en]

The ability to detect and respond to acute oxygen (O2) shortages is indispensable to aerobic life. The molecular mechanisms and circuits underlying this capacity are poorly understood. Here, we characterize the behavioral responses of feeding Caenorhabditis elegans to approximately 1% O2. Acute hypoxia triggers a bout of turning maneuvers followed by a persistent switch to rapid forward movement as animals seek to avoid and escape hypoxia. While the behavioral responses to 1% O2 closely resemble those evoked by 21% O2, they have distinct molecular and circuit underpinnings. Disrupting phosphodiesterases (PDEs), specific G proteins, or BBSome function inhibits escape from 1% O2 due to increased cGMP signaling. A primary source of cGMP is GCY-28, the ortholog of the atrial natriuretic peptide (ANP) receptor. cGMP activates the protein kinase G EGL-4 and enhances neuroendocrine secretion to inhibit acute responses to 1% O2. Triggering a rise in cGMP optogenetically in multiple neurons, including AIA interneurons, rapidly and reversibly inhibits escape from 1% O2. Ca2+ imaging reveals that a 7% to 1% O2 stimulus evokes a Ca2+ decrease in several neurons. Defects in mitochondrial complex I (MCI) and mitochondrial complex I (MCIII), which lead to persistently high reactive oxygen species (ROS), abrogate acute hypoxia responses. In particular, repressing the expression of isp-1, which encodes the iron sulfur protein of MCIII, inhibits escape from 1% O2 without affecting responses to 21% O2. Both genetic and pharmacological up-regulation of mitochondrial ROS increase cGMP levels, which contribute to the reduced hypoxia responses. Our results implicate ROS and precise regulation of intracellular cGMP in the modulation of acute responses to hypoxia by C. elegans.

Place, publisher, year, edition, pages
PLOS, 2022
National Category
Physiology and Anatomy Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-198258 (URN)10.1371/journal.pbio.3001684 (DOI)000828679600001 ()35727855 (PubMedID)2-s2.0-85134083280 (Scopus ID)
Funder
Wellcome trust, 802653Swedish Research Council, 2018-02216
Available from: 2022-08-05 Created: 2022-08-05 Last updated: 2025-02-20Bibliographically approved
Flynn, S. M., Chen, C., Artan, M., Barratt, S., Crisp, A., Nelson, G. M., . . . de Bono, M. (2020). MALT-1 mediates IL-17 neural signaling to regulate C. elegans behavior, immunity and longevity. Nature Communications, 11(1), Article ID 2099.
Open this publication in new window or tab >>MALT-1 mediates IL-17 neural signaling to regulate C. elegans behavior, immunity and longevity
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2020 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 11, no 1, article id 2099Article in journal (Refereed) Published
Abstract [en]

Besides pro-inflammatory roles, the ancient cytokine interleukin-17 (IL-17) modulates neural circuit function. We investigate IL-17 signaling in neurons, and the extent it can alter organismal phenotypes. We combine immunoprecipitation and mass spectrometry to biochemically characterize endogenous signaling complexes that function downstream of IL-17 receptors in C. elegans neurons. We identify the paracaspase MALT-1 as a critical output of the pathway. MALT1 mediates signaling from many immune receptors in mammals, but was not previously implicated in IL-17 signaling or nervous system function. C. elegans MALT-1 forms a complex with homologs of Act1 and IRAK and appears to function both as a scaffold and a protease. MALT-1 is expressed broadly in the C. elegans nervous system, and neuronal IL-17–MALT-1 signaling regulates multiple phenotypes, including escape behavior, associative learning, immunity and longevity. Our data suggest MALT1 has an ancient role modulating neural circuit function downstream of IL-17 to remodel physiology and behavior.

Place, publisher, year, edition, pages
Nature Publishing Group, 2020
National Category
Neurosciences
Identifiers
urn:nbn:se:umu:diva-171860 (URN)10.1038/s41467-020-15872-y (DOI)000531855500029 ()32350248 (PubMedID)2-s2.0-85083956424 (Scopus ID)
Available from: 2020-06-18 Created: 2020-06-18 Last updated: 2023-05-10Bibliographically approved
Beets, I., Zhang, G., Fenk, L. A., Chen, C., Nelson, G. M., Félix, M.-A. & de Bono, M. (2020). Natural Variation in a Dendritic Scaffold Protein Remodels Experience-Dependent Plasticity by Altering Neuropeptide Expression. Neuron, 105(1), 106-121
Open this publication in new window or tab >>Natural Variation in a Dendritic Scaffold Protein Remodels Experience-Dependent Plasticity by Altering Neuropeptide Expression
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2020 (English)In: Neuron, ISSN 0896-6273, E-ISSN 1097-4199, Vol. 105, no 1, p. 106-121Article in journal (Refereed) Published
Abstract [en]

The extent to which behavior is shaped by experience varies between individuals. Genetic differences contribute to this variation, but the neural mechanisms are not understood. Here, we dissect natural variation in the behavioral flexibility of two Caenorhabditis elegans wild strains. In one strain, a memory of exposure to 21% O2 suppresses CO2-evoked locomotory arousal; in the other, CO2 evokes arousal regardless of previous O2 experience. We map that variation to a polymorphic dendritic scaffold protein, ARCP-1, expressed in sensory neurons. ARCP-1 binds the Ca2+-dependent phosphodiesterase PDE-1 and co-localizes PDE-1 with molecular sensors for CO2 at dendritic ends. Reducing ARCP-1 or PDE-1 activity promotes CO2 escape by altering neuropeptide expression in the BAG CO2 sensors. Variation in ARCP-1 alters behavioral plasticity in multiple paradigms. Our findings are reminiscent of genetic accommodation, an evolutionary process by which phenotypic flexibility in response to environmental variation is reset by genetic change.

Place, publisher, year, edition, pages
Elsevier, 2020
Keywords
Caenorhabditis elegans, carbon dioxide sensing, experience-dependent plasticity, genetic accommodation, natural variation, neuropeptide, oxygen sensing
National Category
Neurosciences
Identifiers
urn:nbn:se:umu:diva-172381 (URN)10.1016/j.neuron.2019.10.001 (DOI)000507341300012 ()31757604 (PubMedID)
Funder
NIH (National Institute of Health), P40 OD010440
Available from: 2020-06-18 Created: 2020-06-18 Last updated: 2023-05-10Bibliographically approved
Laurent, P., Ch'ng, Q., Jospin, M., Chen, C., Lorenzo, R. & de Bono, M. (2018). Genetic dissection of neuropeptide cell biology at high and low activity in a defined sensory neuron.. Proceedings of the National Academy of Sciences of the United States of America, 115(29), E6890-E6899
Open this publication in new window or tab >>Genetic dissection of neuropeptide cell biology at high and low activity in a defined sensory neuron.
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2018 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 115, no 29, p. E6890-E6899Article in journal (Refereed) Published
Abstract [en]

Neuropeptides are ubiquitous modulators of behavior and physiology. They are packaged in specialized secretory organelles called dense core vesicles (DCVs) that are released upon neural stimulation. Unlike synaptic vesicles, which can be recycled and refilled close to release sites, DCVs must be replenished by de novo synthesis in the cell body. Here, we dissect DCV cell biology in vivo in a Caenorhabditis elegans sensory neuron whose tonic activity we can control using a natural stimulus. We express fluorescently tagged neuropeptides in the neuron and define parameters that describe their subcellular distribution. We measure these parameters at high and low neural activity in 187 mutants defective in proteins implicated in membrane traffic, neuroendocrine secretion, and neuronal or synaptic activity. Using unsupervised hierarchical clustering methods, we analyze these data and identify 62 groups of genes with similar mutant phenotypes. We explore the function of a subset of these groups. We recapitulate many previous findings, validating our paradigm. We uncover a large battery of proteins involved in recycling DCV membrane proteins, something hitherto poorly explored. We show that the unfolded protein response promotes DCV production, which may contribute to intertissue communication of stress. We also find evidence that different mechanisms of priming and exocytosis may operate at high and low neural activity. Our work provides a defined framework to study DCV biology at different neural activity levels.

Place, publisher, year, edition, pages
Proceedings of the National Academy of Sciences of the United States of America (PNAS), 2018
Keywords
cell biology, dense core vesicles, membrane recycling, neuropeptides, secretory granules
National Category
Neurosciences
Identifiers
urn:nbn:se:umu:diva-172380 (URN)10.1073/pnas.1714610115 (DOI)000438892600028 ()29959203 (PubMedID)
Funder
NIH (National Institute of Health), P40 OD010440
Available from: 2020-06-18 Created: 2020-06-18 Last updated: 2023-05-10Bibliographically approved
Chen, C., Itakura, E., Nelson, G. M., Sheng, M., Laurent, P., Fenk, L. A., . . . de Bono, M. (2017). IL-17 is a neuromodulator of Caenorhabditis elegans sensory responses. Nature, 542(7639), 43-48
Open this publication in new window or tab >>IL-17 is a neuromodulator of Caenorhabditis elegans sensory responses
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2017 (English)In: Nature, ISSN 0028-0836, E-ISSN 1476-4687, Vol. 542, no 7639, p. 43-48Article in journal (Refereed) Published
Abstract [en]

Interleukin-17 (IL-17) is a major pro-inflammatory cytokine: it mediates responses to pathogens or tissue damage, and drives autoimmune diseases. Little is known about its role in the nervous system. Here we show that IL-17 has neuromodulator-like properties in Caenorhabditis elegans. IL-17 can act directly on neurons to alter their response properties and contribution to behaviour. Using unbiased genetic screens, we delineate an IL-17 signalling pathway and show that it acts in the RMG hub interneurons. Disrupting IL-17 signalling reduces RMG responsiveness to input from oxygen sensors, and renders sustained escape from 21% oxygen transient and contingent on additional stimuli. Over-activating IL-17 receptors abnormally heightens responses to 21% oxygen in RMG neurons and whole animals. IL-17 deficiency can be bypassed by optogenetic stimulation of RMG. Inducing IL-17 expression in adults can rescue mutant defects within 6 h. These findings reveal a non-immunological role of IL-17 modulating circuit function and behaviour.

Place, publisher, year, edition, pages
Nature Publishing Group, 2017
National Category
Neurosciences
Identifiers
urn:nbn:se:umu:diva-172379 (URN)10.1038/nature20818 (DOI)000396119300029 ()28099418 (PubMedID)
Funder
NIH (National Institute of Health), P40 OD010440
Available from: 2020-06-18 Created: 2020-06-18 Last updated: 2023-05-10Bibliographically approved
Projects
ACUTE OXYGEN SENSING AND ANOXIA TOLERANCE IN C. ELEGANS [2018-02216_VR]; Umeå University
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0003-2233-8996

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