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1.
Cell ; 2024 Sep 06.
Article in English | MEDLINE | ID: mdl-39260373

ABSTRACT

Control of the electrochemical environment in living cells is typically attributed to ion channels. Here, we show that the formation of biomolecular condensates can modulate the electrochemical environment in bacterial cells, which affects cellular processes globally. Condensate formation generates an electric potential gradient, which directly affects the electrochemical properties of a cell, including cytoplasmic pH and membrane potential. Condensate formation also amplifies cell-cell variability of their electrochemical properties due to passive environmental effect. The modulation of the electrochemical equilibria further controls cell-environment interactions, thus directly influencing bacterial survival under antibiotic stress. The condensate-mediated shift in intracellular electrochemical equilibria drives a change of the global gene expression profile. Our work reveals the biochemical functions of condensates, which extend beyond the functions of biomolecules driving and participating in condensate formation, and uncovers a role of condensates in regulating global cellular physiology.

2.
Cell ; 186(16): 3368-3385.e18, 2023 08 03.
Article in English | MEDLINE | ID: mdl-37541195

ABSTRACT

The properties of dorsal root ganglia (DRG) neurons that innervate the distal colon are poorly defined, hindering our understanding of their roles in normal physiology and gastrointestinal (GI) disease. Here, we report genetically defined subsets of colon-innervating DRG neurons with diverse morphologic and physiologic properties. Four colon-innervating DRG neuron populations are mechanosensitive and exhibit distinct force thresholds to colon distension. The highest threshold population, selectively labeled using Bmpr1b genetic tools, is necessary and sufficient for behavioral responses to high colon distension, which is partly mediated by the mechanosensory ion channel Piezo2. This Aδ-HTMR population mediates behavioral over-reactivity to colon distension caused by inflammation in a model of inflammatory bowel disease. Thus, like cutaneous DRG mechanoreceptor populations, colon-innervating mechanoreceptors exhibit distinct anatomical and physiological properties and tile force threshold space, and genetically defined colon-innervating HTMRs mediate pathophysiological responses to colon distension, revealing a target population for therapeutic intervention.


Subject(s)
Ganglia, Spinal , Mechanoreceptors , Mechanoreceptors/physiology , Colon , Neurons , Skin/innervation
3.
Cell ; 186(12): 2556-2573.e22, 2023 06 08.
Article in English | MEDLINE | ID: mdl-37236194

ABSTRACT

In Drosophila, a dedicated olfactory channel senses a male pheromone, cis-vaccenyl acetate (cVA), promoting female courtship while repelling males. Here, we show that separate cVA-processing streams extract qualitative and positional information. cVA sensory neurons respond to concentration differences in a 5-mm range around a male. Second-order projection neurons encode the angular position of a male by detecting inter-antennal differences in cVA concentration, which are amplified through contralateral inhibition. At the third circuit layer, we identify 47 cell types with diverse input-output connectivity. One population responds tonically to male flies, a second is tuned to olfactory looming, while a third integrates cVA and taste to coincidentally promote female mating. The separation of olfactory features resembles the mammalian what and where visual streams; together with multisensory integration, this enables behavioral responses appropriate to specific ethological contexts.


Subject(s)
Drosophila Proteins , Receptors, Odorant , Animals , Female , Male , Drosophila melanogaster/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Sexual Behavior, Animal/physiology , Receptors, Odorant/metabolism , Pheromones/metabolism , Smell/physiology , Drosophila/metabolism , Mammals/metabolism
4.
Annu Rev Cell Dev Biol ; 40(1): 381-406, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38985883

ABSTRACT

Neural stem cells (NSCs) persist in the adult mammalian brain and are able to give rise to new neurons and glia throughout life. The largest stem cell niche in the adult mouse brain is the ventricular-subventricular zone (V-SVZ) lining the lateral ventricles. Adult NSCs in the V-SVZ coexist in quiescent and actively proliferating states, and they exhibit a regionalized molecular identity. The importance of such spatial diversity is just emerging, as depending on their position within the niche, adult NSCs give rise to distinct subtypes of olfactory bulb interneurons and different types of glia. However, the functional relevance of stem cell heterogeneity in the V-SVZ is still poorly understood. Here, we put into perspective findings highlighting the importance of adult NSC diversity for brain plasticity, and how the body signals to brain stem cells in different physiological states to regulate their behavior.


Subject(s)
Adult Stem Cells , Neural Stem Cells , Stem Cell Niche , Animals , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Adult Stem Cells/cytology , Adult Stem Cells/metabolism , Humans , Lateral Ventricles/cytology , Neurogenesis , Olfactory Bulb/cytology , Olfactory Bulb/metabolism , Mice , Brain/cytology , Cell Differentiation
5.
Cell ; 185(2): 235-249, 2022 01 20.
Article in English | MEDLINE | ID: mdl-34995481

ABSTRACT

How cells become specialized, or "mature," is important for cell and developmental biology. While maturity is usually deemed a terminal fate, it may be more helpful to consider maturation not as a switch but as a dynamic continuum of adaptive phenotypic states set by genetic and environment programing. The hallmarks of maturity comprise changes in anatomy (form, gene circuitry, and interconnectivity) and physiology (function, rhythms, and proliferation) that confer adaptive behavior. We discuss efforts to harness their chemical (nutrients, oxygen, and growth factors) and physical (mechanical, spatial, and electrical) triggers in vitro and in vivo and how maturation strategies may support disease research and regenerative medicine.


Subject(s)
Cell Differentiation , Animals , Biomedical Research , Cell Proliferation , Humans , Models, Biological
6.
Annu Rev Biochem ; 90: 535-558, 2021 06 20.
Article in English | MEDLINE | ID: mdl-33556281

ABSTRACT

Members of the mitochondrial carrier family [solute carrier family 25 (SLC25)] transport nucleotides, amino acids, carboxylic acids, fatty acids, inorganic ions, and vitamins across the mitochondrial inner membrane. They are important for many cellular processes, such as oxidative phosphorylation of lipids and sugars, amino acid metabolism, macromolecular synthesis, ion homeostasis, cellular regulation, and differentiation. Here, we describe the functional elements of the transport mechanism of mitochondrial carriers, consisting of one central substrate-binding site and two gates with salt-bridge networks on either side of the carrier. Binding of the substrate during import causes three gate elements to rotate inward, forming the cytoplasmic network and closing access to the substrate-binding site from the intermembrane space. Simultaneously, three core elements rock outward, disrupting the matrix network and opening the substrate-binding site to the matrix side of the membrane. During export, substrate binding triggers conformational changes involving the same elements but operating in reverse.


Subject(s)
Mitochondrial Membrane Transport Proteins/chemistry , Mitochondrial Membrane Transport Proteins/genetics , Mitochondrial Membrane Transport Proteins/metabolism , Aggrecans/chemistry , Aggrecans/genetics , Aggrecans/metabolism , Amino Acid Sequence , Amino Acids/chemistry , Amino Acids/metabolism , Binding Sites , Biological Transport , Calcium/metabolism , Cardiolipins/metabolism , Conserved Sequence , Cytoplasm/metabolism , Humans , Mitochondrial ADP, ATP Translocases/chemistry , Mitochondrial ADP, ATP Translocases/metabolism , Mutation , Protein Conformation , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism
7.
Cell ; 183(2): 522-536.e19, 2020 10 15.
Article in English | MEDLINE | ID: mdl-32997977

ABSTRACT

Working memory is a form of short-term memory that involves maintaining and updating task-relevant information toward goal-directed pursuits. Classical models posit persistent activity in prefrontal cortex (PFC) as a primary neural correlate, but emerging views suggest additional mechanisms may exist. We screened ∼200 genetically diverse mice on a working memory task and identified a genetic locus on chromosome 5 that contributes to a substantial proportion (17%) of the phenotypic variance. Within the locus, we identified a gene encoding an orphan G-protein-coupled receptor, Gpr12, which is sufficient to drive substantial and bidirectional changes in working memory. Molecular, cellular, and imaging studies revealed that Gpr12 enables high thalamus-PFC synchrony to support memory maintenance and choice accuracy. These findings identify an orphan receptor as a potent modifier of short-term memory and supplement classical PFC-based models with an emerging thalamus-centric framework for the mechanistic understanding of working memory.


Subject(s)
Memory, Short-Term/physiology , Receptors, G-Protein-Coupled/genetics , Thalamus/metabolism , Animals , Male , Mice , Mice, Inbred C57BL , Neural Pathways/physiology , Neurons/metabolism , Neurons/physiology , Prefrontal Cortex/physiology , Receptors, G-Protein-Coupled/metabolism
8.
Cell ; 183(3): 594-604.e14, 2020 10 29.
Article in English | MEDLINE | ID: mdl-33125889

ABSTRACT

Animals display wide-ranging evolutionary adaptations based on their ecological niche. Octopuses explore the seafloor with their flexible arms using a specialized "taste by touch" system to locally sense and respond to prey-derived chemicals and movement. How the peripherally distributed octopus nervous system mediates relatively autonomous arm behavior is unknown. Here, we report that octopus arms use a family of cephalopod-specific chemotactile receptors (CRs) to detect poorly soluble natural products, thereby defining a form of contact-dependent, aquatic chemosensation. CRs form discrete ion channel complexes that mediate the detection of diverse stimuli and transduction of specific ionic signals. Furthermore, distinct chemo- and mechanosensory cells exhibit specific receptor expression and electrical activities to support peripheral information coding and complex chemotactile behaviors. These findings demonstrate that the peripherally distributed octopus nervous system is a key site for signal processing and highlight how molecular and anatomical features synergistically evolve to suit an animal's environmental context.


Subject(s)
Chemoreceptor Cells/metabolism , Octopodiformes/physiology , Touch/physiology , Acetylcholine/pharmacology , Amino Acid Sequence , Animals , Behavior, Animal , Female , HEK293 Cells , Humans , Octopodiformes/anatomy & histology , Octopodiformes/genetics , Receptors, Cell Surface/chemistry , Receptors, Cell Surface/metabolism , Receptors, Cholinergic/metabolism , Signal Transduction
9.
Cell ; 182(6): 1460-1473.e17, 2020 09 17.
Article in English | MEDLINE | ID: mdl-32916129

ABSTRACT

The gut microbiome has been implicated in multiple human chronic gastrointestinal (GI) disorders. Determining its mechanistic role in disease has been difficult due to apparent disconnects between animal and human studies and lack of an integrated multi-omics view of disease-specific physiological changes. We integrated longitudinal multi-omics data from the gut microbiome, metabolome, host epigenome, and transcriptome in the context of irritable bowel syndrome (IBS) host physiology. We identified IBS subtype-specific and symptom-related variation in microbial composition and function. A subset of identified changes in microbial metabolites correspond to host physiological mechanisms that are relevant to IBS. By integrating multiple data layers, we identified purine metabolism as a novel host-microbial metabolic pathway in IBS with translational potential. Our study highlights the importance of longitudinal sampling and integrating complementary multi-omics data to identify functional mechanisms that can serve as therapeutic targets in a comprehensive treatment strategy for chronic GI diseases. VIDEO ABSTRACT.


Subject(s)
Gastrointestinal Microbiome/genetics , Gene Expression Regulation/genetics , Irritable Bowel Syndrome/metabolism , Metabolome , Purines/metabolism , Transcriptome/genetics , Animals , Bile Acids and Salts/metabolism , Biopsy , Butyrates/metabolism , Chromatography, Liquid , Cross-Sectional Studies , Epigenomics , Feces/microbiology , Female , Gastrointestinal Microbiome/physiology , Gene Expression Regulation/physiology , Host Microbial Interactions/genetics , Humans , Hypoxanthine/metabolism , Irritable Bowel Syndrome/genetics , Irritable Bowel Syndrome/microbiology , Longitudinal Studies , Male , Metabolome/physiology , Mice , Observational Studies as Topic , Prospective Studies , Software , Tandem Mass Spectrometry , Transcriptome/physiology
10.
Cell ; 177(6): 1448-1462.e14, 2019 05 30.
Article in English | MEDLINE | ID: mdl-31150621

ABSTRACT

Mammals rely on a network of circadian clocks to control daily systemic metabolism and physiology. The central pacemaker in the suprachiasmatic nucleus (SCN) is considered hierarchically dominant over peripheral clocks, whose degree of independence, or tissue-level autonomy, has never been ascertained in vivo. Using arrhythmic Bmal1-null mice, we generated animals with reconstituted circadian expression of BMAL1 exclusively in the liver (Liver-RE). High-throughput transcriptomics and metabolomics show that the liver has independent circadian functions specific for metabolic processes such as the NAD+ salvage pathway and glycogen turnover. However, although BMAL1 occupies chromatin at most genomic targets in Liver-RE mice, circadian expression is restricted to ∼10% of normally rhythmic transcripts. Finally, rhythmic clock gene expression is lost in Liver-RE mice under constant darkness. Hence, full circadian function in the liver depends on signals emanating from other clocks, and light contributes to tissue-autonomous clock function.


Subject(s)
ARNTL Transcription Factors/physiology , Circadian Clocks/genetics , Liver/metabolism , ARNTL Transcription Factors/metabolism , Animals , CLOCK Proteins/metabolism , Circadian Clocks/physiology , Circadian Rhythm/genetics , Female , Gene Expression Regulation , Homeostasis , Light , Male , Mice , Mice, Knockout , Models, Animal , Organ Specificity/physiology , Photoperiod , Suprachiasmatic Nucleus/metabolism
11.
Cell ; 178(6): 1362-1374.e16, 2019 09 05.
Article in English | MEDLINE | ID: mdl-31447178

ABSTRACT

TRPA1 is a chemosensory ion channel that functions as a sentinel for structurally diverse electrophilic irritants. Channel activation occurs through an unusual mechanism involving covalent modification of cysteine residues clustered within an amino-terminal cytoplasmic domain. Here, we describe a peptidergic scorpion toxin (WaTx) that activates TRPA1 by penetrating the plasma membrane to access the same intracellular site modified by reactive electrophiles. WaTx stabilizes TRPA1 in a biophysically distinct active state characterized by prolonged channel openings and low Ca2+ permeability. Consequently, WaTx elicits acute pain and pain hypersensitivity but fails to trigger efferent release of neuropeptides and neurogenic inflammation typically produced by noxious electrophiles. These findings provide a striking example of convergent evolution whereby chemically disparate animal- and plant-derived irritants target the same key allosteric regulatory site to differentially modulate channel activity. WaTx is a unique pharmacological probe for dissecting TRPA1 function and its contribution to acute and persistent pain.


Subject(s)
Scorpion Venoms/pharmacology , TRPA1 Cation Channel/metabolism , Animals , HEK293 Cells , Humans , Mice, Inbred C57BL , Rats, Sprague-Dawley , Scorpions/metabolism
12.
Cell ; 172(1-2): 318-330.e18, 2018 01 11.
Article in English | MEDLINE | ID: mdl-29328919

ABSTRACT

Color vision extracts spectral information by comparing signals from photoreceptors with different visual pigments. Such comparisons are encoded by color-opponent neurons that are excited at one wavelength and inhibited at another. Here, we examine the circuit implementation of color-opponent processing in the Drosophila visual system by combining two-photon calcium imaging with genetic dissection of visual circuits. We report that color-opponent processing of UVshort/blue and UVlong/green is already implemented in R7/R8 inner photoreceptor terminals of "pale" and "yellow" ommatidia, respectively. R7 and R8 photoreceptors of the same type of ommatidia mutually inhibit each other directly via HisCl1 histamine receptors and receive additional feedback inhibition that requires the second histamine receptor Ort. Color-opponent processing at the first visual synapse represents an unexpected commonality between Drosophila and vertebrates; however, the differences in the molecular and cellular implementation suggest that the same principles evolved independently.


Subject(s)
Color Perception , Color Vision , Drosophila Proteins/metabolism , Photoreceptor Cells, Invertebrate/metabolism , Receptors, Histamine/metabolism , Animals , Drosophila , Drosophila Proteins/genetics , Feedback, Physiological , Photoreceptor Cells, Invertebrate/physiology , Receptors, Histamine/genetics
13.
Cell ; 170(1): 185-198.e16, 2017 Jun 29.
Article in English | MEDLINE | ID: mdl-28648659

ABSTRACT

Dietary, microbial, and inflammatory factors modulate the gut-brain axis and influence physiological processes ranging from metabolism to cognition. The gut epithelium is a principal site for detecting such agents, but precisely how it communicates with neural elements is poorly understood. Serotonergic enterochromaffin (EC) cells are proposed to fulfill this role by acting as chemosensors, but understanding how these rare and unique cell types transduce chemosensory information to the nervous system has been hampered by their paucity and inaccessibility to single-cell measurements. Here, we circumvent this limitation by exploiting cultured intestinal organoids together with single-cell measurements to elucidate intrinsic biophysical, pharmacological, and genetic properties of EC cells. We show that EC cells express specific chemosensory receptors, are electrically excitable, and modulate serotonin-sensitive primary afferent nerve fibers via synaptic connections, enabling them to detect and transduce environmental, metabolic, and homeostatic information from the gut directly to the nervous system.


Subject(s)
Chemoreceptor Cells/metabolism , Enterochromaffin Cells/metabolism , Gastrointestinal Tract/cytology , Neural Pathways , Amino Acid Sequence , Animals , Base Sequence , Calcium Channels/metabolism , Catecholamines/metabolism , Gene Expression Profiling , Humans , Irritable Bowel Syndrome/pathology , Mice , Nerve Fibers/metabolism , Nerve Tissue Proteins/metabolism , Receptors, Odorant/metabolism , Receptors, Serotonin, 5-HT3/metabolism , Serotonin/metabolism , Signal Transduction , Synapses/metabolism , TRPA1 Cation Channel , Transient Receptor Potential Channels/metabolism
14.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362772

ABSTRACT

Solid tumors that arise in the body interact with neurons, which influences cancer progression and treatment response. Here, we discuss key questions in the field, including defining the nature of interactions between tumors and neural circuits and defining how neural signals shape the tumor microenvironment. This information will allow us to optimally target neural signaling to improve outcomes for cancer patients.

15.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362775

ABSTRACT

Recent work has highlighted the central role the brain-body axis plays in not only maintaining organismal homeostasis but also coordinating the body's response to immune and inflammatory insults. Here, we discuss how science is poised to address the many ways that our brain is directly involved with disease. In particular, we feel that combining cutting-edge tools in neuroscience with translationally relevant models of cancer will be critical to understanding how the brain and tumors communicate and modulate each other's behavior.

16.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362777

ABSTRACT

Thermoregulation, responsible for maintaining a stable core temperature during wide fluctuations in external and internal thermal environments, is an iconic homeostatic process. However, we suggest that despite its fundamental physiological significance, the potential for required cool housing temperatures and thermoregulatory mechanisms to influence the interpretation of experimental data is not sufficiently appreciated. Moreover, although it is generally assumed that the major thermoregulatory pathways are well understood, here we discuss new research that suggests otherwise and reveals the emergence of a new wave of exciting ideas for this "old" field of research.

17.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362774

ABSTRACT

Neural reflexes occupy a central role in physiological homeostasis. The vagus nerve is a major conduit for transmitting afferent and efferent signals in homeostatic reflex arcs between the body and the brain. Recent advances in neuroscience, immunology, and physiology have revealed important vagus nerve mechanisms in suppressing inflammation and treating rheumatoid arthritis and other autoimmune conditions. Numerous clinical trials indicate that there is significant benefit to vagus nerve stimulation therapy. Although many questions are still unanswered, it will be important, even necessary, to pursue answers that will be useful in guiding interventions to modulate immunological and physiological homeostasis.

18.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362781

ABSTRACT

The world of cancer science is moving toward a paradigm shift in making connections with neuroscience. After decades of research on genetic instability and mutations or on the tumor microenvironment, emerging evidence suggests that a malignant tumor is able to hijack and use the brain and its network of peripheral and central neurons as disrupters of homeostasis in the body. Whole-body homeostasis requires brain-body circuits to maintain survival and health via the processes of interoception, immunoception, and nociception. It is now likely that cancer disturbs physiological brain-body communication in making bidirectional brain tumor connections.

19.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362782

ABSTRACT

The study of biological mechanisms, while crucial, cannot fully explain complex phenomena like the instinct to eat. The mind-body connection, as exemplified by the concept of "voodoo death," highlights the profound influence of belief and cultural context on physiology. Indigenous knowledge systems further emphasize the interconnectedness of humans with their environment. Recent discoveries in gut-brain communication reveal the intricate neural circuits that drive our visceral desires, but a holistic approach that integrates both physiological mechanisms and the subjective experience of life, informed by diverse cultural perspectives, will be essential to truly understand what it means to be alive.

20.
Genes Dev ; 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39362778

ABSTRACT

Our approaches toward understanding cancer have evolved beyond cell-intrinsic and local microenvironmental changes within the tumor to encompass how the cancer interfaces with the entire host organism. The nervous system is uniquely situated at the interface between the brain and body, constantly receiving and sending signals back and forth to maintain homeostasis and respond to salient stimuli. It is becoming clear that various cancers disrupt this dialog between the brain and body via both neuronal and humoral routes, leading to aberrant brain activity and accelerated disease. In this outlook, I discuss this view of cancer as a homeostatic challenge, emphasize cutting-edge work, and provide outstanding questions that need to be answered to move the field forward.

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