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7.
Proc Natl Acad Sci U S A ; 120(39): e2309955120, 2023 09 26.
Article in English | MEDLINE | ID: mdl-37725655

ABSTRACT

Cellular form and function are controlled by the assembly and stability of actin cytoskeletal structures-but disassembling/pruning these structures is equally essential for the plasticity and remodeling that underlie behavioral adaptations. Importantly, the mechanisms of actin assembly have been well-defined-including that it is driven by actin's polymerization into filaments (F-actin) and then often bundling by crosslinking proteins into stable higher-order structures. In contrast, it remains less clear how these stable bundled F-actin structures are rapidly disassembled. We now uncover mechanisms that rapidly and extensively disassemble bundled F-actin. Using biochemical, structural, and imaging assays with purified proteins, we show that F-actin bundled with one of the most prominent crosslinkers, fascin, is extensively disassembled by Mical, the F-actin disassembly enzyme. Furthermore, the product of this Mical effect, Mical-oxidized actin, is poorly bundled by fascin, thereby further amplifying Mical's disassembly effects on bundled F-actin. Moreover, another critical F-actin regulator, cofilin, also affects fascin-bundled filaments, but we find herein that it synergizes with Mical to dramatically amplify its disassembly of bundled F-actin compared to the sum of their individual effects. Genetic and high-resolution cellular assays reveal that Mical also counteracts crosslinking proteins/bundled F-actin in vivo to control cellular extension, axon guidance, and Semaphorin/Plexin cell-cell repulsion. Yet, our results also support the idea that fascin-bundling serves to dampen Mical's F-actin disassembly in vitro and in vivo-and that physiologically relevant cellular remodeling requires a fine-tuned interplay between the factors that build bundled F-actin networks and those that disassemble them.


Subject(s)
Actin Depolymerizing Factors , Actins , Actin Cytoskeleton , Cytoskeleton , Axon Guidance
8.
Cell ; 186(18): 3862-3881.e28, 2023 08 31.
Article in English | MEDLINE | ID: mdl-37572660

ABSTRACT

Male sexual behavior is innate and rewarding. Despite its centrality to reproduction, a molecularly specified neural circuit governing innate male sexual behavior and reward remains to be characterized. We have discovered a developmentally wired neural circuit necessary and sufficient for male mating. This circuit connects chemosensory input to BNSTprTac1 neurons, which innervate POATacr1 neurons that project to centers regulating motor output and reward. Epistasis studies demonstrate that BNSTprTac1 neurons are upstream of POATacr1 neurons, and BNSTprTac1-released substance P following mate recognition potentiates activation of POATacr1 neurons through Tacr1 to initiate mating. Experimental activation of POATacr1 neurons triggers mating, even in sexually satiated males, and it is rewarding, eliciting dopamine release and self-stimulation of these cells. Together, we have uncovered a neural circuit that governs the key aspects of innate male sexual behavior: motor displays, drive, and reward.


Subject(s)
Neural Pathways , Sexual Behavior, Animal , Animals , Male , Neurons/physiology , Reward , Sexual Behavior, Animal/physiology , Mice
9.
Cell ; 186(6): 1195-1211.e19, 2023 03 16.
Article in English | MEDLINE | ID: mdl-36796363

ABSTRACT

Social interactions require awareness and understanding of the behavior of others. Mirror neurons, cells representing an action by self and others, have been proposed to be integral to the cognitive substrates that enable such awareness and understanding. Mirror neurons of the primate neocortex represent skilled motor tasks, but it is unclear if they are critical for the actions they embody, enable social behaviors, or exist in non-cortical regions. We demonstrate that the activity of individual VMHvlPR neurons in the mouse hypothalamus represents aggression performed by self and others. We used a genetically encoded mirror-TRAP strategy to functionally interrogate these aggression-mirroring neurons. We find that their activity is essential for fighting and that forced activation of these cells triggers aggressive displays by mice, even toward their mirror image. Together, we have discovered a mirroring center in an evolutionarily ancient region that provides a subcortical cognitive substrate essential for a social behavior.


Subject(s)
Aggression , Hypothalamus , Mirror Neurons , Animals , Mice , Aggression/physiology , Hypothalamus/cytology , Social Behavior
10.
Cell ; 185(4): 654-671.e22, 2022 02 17.
Article in English | MEDLINE | ID: mdl-35065713

ABSTRACT

Sex hormones exert a profound influence on gendered behaviors. How individual sex hormone-responsive neuronal populations regulate diverse sex-typical behaviors is unclear. We performed orthogonal, genetically targeted sequencing of four estrogen receptor 1-expressing (Esr1+) populations and identified 1,415 genes expressed differentially between sexes or estrous states. Unique subsets of these genes were distributed across all 137 transcriptomically defined Esr1+ cell types, including estrous stage-specific ones, that comprise the four populations. We used differentially expressed genes labeling single Esr1+ cell types as entry points to functionally characterize two such cell types, BNSTprTac1/Esr1 and VMHvlCckar/Esr1. We observed that these two cell types, but not the other Esr1+ cell types in these populations, are essential for sex recognition in males and mating in females, respectively. Furthermore, VMHvlCckar/Esr1 cell type projections are distinct from those of other VMHvlEsr1 cell types. Together, projection and functional specialization of dimorphic cell types enables sex hormone-responsive populations to regulate diverse social behaviors.


Subject(s)
Estrous Cycle/genetics , Gene Expression Regulation , Sex Characteristics , Sexual Behavior, Animal/physiology , Aggression , Animals , Aromatase/metabolism , Autistic Disorder/genetics , Estrogen Receptor alpha/genetics , Estrogen Receptor alpha/metabolism , Female , Gene Expression Profiling , HEK293 Cells , Humans , Male , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Neurons/metabolism , Social Behavior
11.
Cell ; 179(6): 1393-1408.e16, 2019 11 27.
Article in English | MEDLINE | ID: mdl-31735496

ABSTRACT

Behaviors are inextricably linked to internal state. We have identified a neural mechanism that links female sexual behavior with the estrus, the ovulatory phase of the estrous cycle. We find that progesterone-receptor (PR)-expressing neurons in the ventromedial hypothalamus (VMH) are active and required during this behavior. Activating these neurons, however, does not elicit sexual behavior in non-estrus females. We show that projections of PR+ VMH neurons to the anteroventral periventricular (AVPV) nucleus change across the 5-day mouse estrous cycle, with ∼3-fold more termini and functional connections during estrus. This cyclic increase in connectivity is found in adult females, but not males, and regulated by estrogen signaling in PR+ VMH neurons. We further show that these connections are essential for sexual behavior in receptive females. Thus, estrogen-regulated structural plasticity of behaviorally salient connections in the adult female brain links sexual behavior to the estrus phase of the estrous cycle.


Subject(s)
Nerve Net/physiology , Sexual Behavior, Animal/physiology , Animals , Estrogens/metabolism , Estrous Cycle/drug effects , Female , Gonadal Steroid Hormones/pharmacology , Hypothalamus, Anterior/physiology , Male , Mice, Inbred C57BL , Nerve Net/drug effects , Neuronal Plasticity/drug effects , Neurons/drug effects , Neurons/metabolism , Ovary/metabolism , Presynaptic Terminals/drug effects , Presynaptic Terminals/metabolism , Receptors, Progesterone/metabolism , Sexual Behavior, Animal/drug effects , Signal Transduction/drug effects , Time Factors
12.
Cell ; 176(5): 1190-1205.e20, 2019 02 21.
Article in English | MEDLINE | ID: mdl-30712868

ABSTRACT

Sexually naive animals have to distinguish between the sexes because they show species-typical interactions with males and females without meaningful prior experience. However, central neural pathways in naive mammals that recognize sex of other individuals remain poorly characterized. We examined the role of the principal component of the bed nucleus of stria terminalis (BNSTpr), a limbic center, in social interactions in mice. We find that activity of aromatase-expressing BNSTpr (AB) neurons appears to encode sex of other animals and subsequent displays of mating in sexually naive males. Silencing these neurons in males eliminates preference for female pheromones and abrogates mating success, whereas activating them even transiently promotes male-male mating. Surprisingly, female AB neurons do not appear to control sex recognition, mating, or maternal aggression. In summary, AB neurons represent sex of other animals and govern ensuing social behaviors in sexually naive males.


Subject(s)
Limbic System/metabolism , Septal Nuclei/physiology , Sexual Behavior, Animal/physiology , Amygdala/physiology , Animals , Aromatase/metabolism , Brain/physiology , Male , Mice , Mice, Inbred C57BL , Neural Pathways/metabolism , Neurons/metabolism , Pheromones/metabolism , Sex Characteristics , Social Behavior
13.
Neuron ; 95(4): 955-970.e4, 2017 Aug 16.
Article in English | MEDLINE | ID: mdl-28757304

ABSTRACT

How environmental and physiological signals interact to influence neural circuits underlying developmentally programmed social interactions such as male territorial aggression is poorly understood. We have tested the influence of sensory cues, social context, and sex hormones on progesterone receptor (PR)-expressing neurons in the ventromedial hypothalamus (VMH) that are critical for male territorial aggression. We find that these neurons can drive aggressive displays in solitary males independent of pheromonal input, gonadal hormones, opponents, or social context. By contrast, these neurons cannot elicit aggression in socially housed males that intrude in another male's territory unless their pheromone-sensing is disabled. This modulation of aggression cannot be accounted for by linear integration of environmental and physiological signals. Together, our studies suggest that fundamentally non-linear computations enable social context to exert a dominant influence on developmentally hard-wired hypothalamus-mediated male territorial aggression.


Subject(s)
Aggression/physiology , Hypothalamus/cytology , Hypothalamus/physiology , Neurons/physiology , Social Behavior , Action Potentials/drug effects , Action Potentials/genetics , Adenoviridae/genetics , Animals , Antipsychotic Agents/pharmacology , Clozapine/analogs & derivatives , Clozapine/pharmacology , Cyclic Nucleotide-Gated Cation Channels/genetics , Cyclic Nucleotide-Gated Cation Channels/metabolism , Female , In Vitro Techniques , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Male , Mice, Inbred C57BL , Mice, Transgenic , Neurons/drug effects , Patch-Clamp Techniques , Receptors, Progesterone/genetics , Receptors, Progesterone/metabolism , Sex Factors , TRPC Cation Channels/genetics , TRPC Cation Channels/metabolism
14.
Methods Mol Biol ; 1493: 147-159, 2017.
Article in English | MEDLINE | ID: mdl-27787848

ABSTRACT

Protein phosphorylation is one of the widely used posttranslational modifications that alter protein function in vivo. We recently showed phosphorylation of Drosophila Plexin A by cyclic adenosine monophosphate (cAMP)-dependent protein kinase (PKA) and subsequent inhibition of plexin-mediated repulsive guidance. This phosphorylation occurs in the active site of the plexin GTPase-activating protein (GAP) domain, which in turn inhibits endogenous GAP activity toward Ras/Rap family small GTP-binding proteins by recruiting the phospho-serine/threonine-binding protein 14-3-3ε. Here we describe how phosphorylation of Plexin A can be detected and quantitated using an in vitro kinase assay and radioactive [γ-P32] adenosine 5'-triphosphate (ATP).


Subject(s)
Cyclic AMP-Dependent Protein Kinases/metabolism , Drosophila Proteins/metabolism , Nerve Tissue Proteins/metabolism , Receptors, Cell Surface/metabolism , 14-3-3 Proteins/metabolism , Adenosine Triphosphate/metabolism , Animals , Drosophila melanogaster , Electrophoresis, Polyacrylamide Gel , GTP Phosphohydrolases/metabolism , Phosphorylation
15.
Curr Opin Neurobiol ; 38: 89-95, 2016 06.
Article in English | MEDLINE | ID: mdl-27162162

ABSTRACT

Sexually reproducing animals exhibit sex differences in behavior. Sexual dimorphisms in mating, aggression, and parental care directly contribute to reproductive success of the individual and survival of progeny. In this review, we discuss recent advances in our understanding of the molecular and neural network mechanisms underlying these behaviors in mice. Notable advances include novel insights into the sensory control of social interactions and the identification of molecularly-specified neuronal populations in the brain that control mating, aggression, and parental behaviors. In the case of the latter, these advances mark a watershed because scientists can now focus on discrete neural pathways in an effort to understand how the brain encodes these fundamental social behaviors.


Subject(s)
Nervous System Physiological Phenomena , Social Behavior , Aggression/physiology , Animals , Mice , Sex Characteristics , Sexual Behavior, Animal/physiology
16.
Small GTPases ; 4(1): 34-41, 2013.
Article in English | MEDLINE | ID: mdl-23247636

ABSTRACT

Small GTPases play critical roles in diverse biological events including regulating both the cytoskeletal and adhesive properties of cells. The importance of small GTPases to these events stems from their ability to be turned on and off, respectively, by specific GEFs and GAPs. In neurons, for example, regulation of small GTPase activity by extracellular guidance cues controls axonal and dendritic process shape, extension and navigation. Here, we discuss recent findings that indicate a specific regulator of small GTPase signaling, the Plexin transmembrane GAP, is differentially controlled by specific extracellular cues to guide growing axons. In particular, Plexins are receptors for one of the largest families of axon guidance cues, Semaphorins and negatively regulate cell morphology and motility by serving as GAPs for Ras/Rap family GTPases. Recent observations reveal that Plexin's GAP activity is controlled by the cAMP-dependent protein kinase (PKA), which phosphorylates Plexin and generates a binding site for the phospho-serine/threonine binding protein 14-3-3ε. This PKA-mediated Plexin-14-3-3ε interaction prevents Plexin from associating with its GTPase substrate, and thus antagonizes Semaphorin signaling. We now further examine these interactions and how they provide a new logic by which axon guidance signaling pathways over-ride one another to steer growing axons. We also further explore how Plexin interacting proteins, including Ras, PKA and 14-3-3 may interact with the Plexin GAP domain. Our observations also further indicate that 14-3-3 proteins may have conserved roles in the regulation of GTPase activity.


Subject(s)
Axons/metabolism , Monomeric GTP-Binding Proteins/metabolism , Signal Transduction , 14-3-3 Proteins/metabolism , Animals , Cell Adhesion Molecules/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Cytoskeleton/metabolism , Humans , Models, Molecular , Nerve Tissue Proteins/metabolism , Semaphorins/metabolism
17.
Neuron ; 74(1): 108-21, 2012 Apr 12.
Article in English | MEDLINE | ID: mdl-22500634

ABSTRACT

The biochemical means through which multiple signaling pathways are integrated in navigating axons is poorly understood. Semaphorins are among the largest families of axon guidance cues and utilize Plexin (Plex) receptors to exert repulsive effects on axon extension. However, Semaphorin repulsion can be silenced by other distinct cues and signaling cascades, raising questions of the logic underlying these events. We now uncover a simple biochemical switch that controls Semaphorin/Plexin repulsive guidance. Plexins are Ras/Rap family GTPase activating proteins (GAPs) and we find that the PlexA GAP domain is phosphorylated by the cAMP-dependent protein kinase (PKA). This PlexA phosphorylation generates a specific binding site for 14-3-3ε, a phospho-binding protein that we find to be necessary for axon guidance. These PKA-mediated Plexin-14-3-3ε interactions prevent PlexA from interacting with its Ras family GTPase substrate and antagonize Semaphorin repulsion. Our results indicate that these interactions switch repulsion to adhesion and identify a point of convergence for multiple guidance molecules.


Subject(s)
14-3-3 Proteins/physiology , Neural Pathways/growth & development , Second Messenger Systems/physiology , Semaphorins/physiology , Signal Transduction/physiology , Animals , Axons/physiology , Cell Adhesion/physiology , Cell Adhesion Molecules/physiology , Cyclic AMP-Dependent Protein Kinases/physiology , Drosophila , Drosophila Proteins/physiology , Nerve Tissue Proteins/physiology , Receptors, Cell Surface/physiology , ras GTPase-Activating Proteins/physiology
18.
PLoS Biol ; 8(12): e1000553, 2010 Dec 07.
Article in English | MEDLINE | ID: mdl-21151882

ABSTRACT

Axon pathfinding and synapse formation rely on precise spatiotemporal localization of guidance receptors. However, little is known about the neuron-specific intracellular trafficking mechanisms that underlie the sorting and activity of these receptors. Here we show that loss of the neuron-specific v-ATPase subunit a1 leads to progressive endosomal guidance receptor accumulations after neuronal differentiation. In the embryo and in adult photoreceptors, these accumulations occur after axon pathfinding and synapse formation is complete. In contrast, receptor missorting occurs sufficiently early in neurons of the adult central nervous system to cause connectivity defects. An increase of guidance receptors, but not of membrane proteins without signaling function, causes specific gain-of-function phenotypes. A point mutant that promotes sorting but prevents degradation reveals spatiotemporally specific guidance receptor turnover and accelerates developmental defects in photoreceptors and embryonic motor neurons. Our findings indicate that a neuron-specific endolysosomal degradation mechanism is part of the cell biological machinery that regulates guidance receptor turnover and signaling.


Subject(s)
Adenosine Triphosphatases/metabolism , Central Nervous System/growth & development , Drosophila Proteins/metabolism , Drosophila/embryology , Drosophila/metabolism , Nervous System/embryology , Animals , Axons/metabolism , Central Nervous System/embryology , Endosomes/metabolism , Neurogenesis , Photoreceptor Cells, Invertebrate/metabolism , Point Mutation , Vacuolar Proton-Translocating ATPases
19.
Nature ; 463(7282): 823-7, 2010 Feb 11.
Article in English | MEDLINE | ID: mdl-20148037

ABSTRACT

How instructive cues present on the cell surface have their precise effects on the actin cytoskeleton is poorly understood. Semaphorins are one of the largest families of these instructive cues and are widely studied for their effects on cell movement, navigation, angiogenesis, immunology and cancer. Semaphorins/collapsins were characterized in part on the basis of their ability to drastically alter actin cytoskeletal dynamics in neuronal processes, but despite considerable progress in the identification of semaphorin receptors and their signalling pathways, the molecules linking them to the precise control of cytoskeletal elements remain unknown. Recently, highly unusual proteins of the Mical family of enzymes have been found to associate with the cytoplasmic portion of plexins, which are large cell-surface semaphorin receptors, and to mediate axon guidance, synaptogenesis, dendritic pruning and other cell morphological changes. Mical enzymes perform reduction-oxidation (redox) enzymatic reactions and also contain domains found in proteins that regulate cell morphology. However, nothing is known of the role of Mical or its redox activity in mediating morphological changes. Here we report that Mical directly links semaphorins and their plexin receptors to the precise control of actin filament (F-actin) dynamics. We found that Mical is both necessary and sufficient for semaphorin-plexin-mediated F-actin reorganization in vivo. Likewise, we purified Mical protein and found that it directly binds F-actin and disassembles both individual and bundled actin filaments. We also found that Mical utilizes its redox activity to alter F-actin dynamics in vivo and in vitro, indicating a previously unknown role for specific redox signalling events in actin cytoskeletal regulation. Mical therefore is a novel F-actin-disassembly factor that provides a molecular conduit through which actin reorganization-a hallmark of cell morphological changes including axon navigation-can be precisely achieved spatiotemporally in response to semaphorins.


Subject(s)
Actins/chemistry , Actins/metabolism , DNA-Binding Proteins/metabolism , Drosophila melanogaster/cytology , Drosophila melanogaster/metabolism , Semaphorins/metabolism , Animals , Cell Adhesion Molecules/metabolism , Cell Shape/physiology , Cytoskeleton/chemistry , Cytoskeleton/metabolism , DNA-Binding Proteins/deficiency , DNA-Binding Proteins/genetics , Drosophila melanogaster/anatomy & histology , Drosophila melanogaster/enzymology , Growth Cones/metabolism , Nerve Tissue Proteins/metabolism , Oxidation-Reduction , Oxidoreductases/deficiency , Oxidoreductases/genetics , Oxidoreductases/metabolism , Protein Binding
20.
Proc Natl Acad Sci U S A ; 106(37): 15610-5, 2009 Sep 15.
Article in English | MEDLINE | ID: mdl-19717441

ABSTRACT

Plexin cell surface receptors bind to semaphorin ligands and transduce signals for regulating neuronal axon guidance. The intracellular region of plexins is essential for signaling and contains a R-Ras/M-Ras GTPase activating protein (GAP) domain that is divided into two segments by a Rho GTPase-binding domain (RBD). The regulation mechanisms for plexin remain elusive, although it is known that activation requires both binding of semaphorin to the extracellular region and a Rho-family GTPase (Rac1 or Rnd1) to the RBD. Here we report the crystal structure of the plexin A3 intracellular region. The structure shows that the N- and C-terminal portions of the GAP homologous regions together form a GAP domain with an overall fold similar to other Ras GAPs. However, the plexin GAP domain adopts a closed conformation and cannot accommodate R-Ras/M-Ras in its substrate-binding site, providing a structural basis for the autoinhibited state of plexins. A comparison with the plexin B1 RBD/Rnd1 complex structure suggests that Rnd1 binding alone does not induce a conformational change in plexin, explaining the requirement of both semaphorin and a Rho GTPase for activation. The structure also identifies an N-terminal segment that is important for regulation. Both the N-terminal segment and the RBD make extensive interactions with the GAP domain, suggesting the presence of an allosteric network connecting these three domains that integrates semaphorin and Rho GTPase signals to activate the GAP. The importance of these interactions in plexin signaling is shown by both cell-based and in vivo axon guidance assays.


Subject(s)
Nerve Tissue Proteins/chemistry , Receptors, Cell Surface/chemistry , Amino Acid Sequence , Animals , Animals, Genetically Modified , Axons/metabolism , Binding Sites , Crystallography, X-Ray , Drosophila Proteins/chemistry , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Ligands , Mice , Models, Molecular , Molecular Sequence Data , Nerve Tissue Proteins/antagonists & inhibitors , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Protein Conformation , Protein Structure, Quaternary , Protein Structure, Tertiary , Receptors, Cell Surface/antagonists & inhibitors , Receptors, Cell Surface/genetics , Receptors, Cell Surface/metabolism , Recombinant Proteins/chemistry , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Semaphorins/metabolism , Sequence Homology, Amino Acid , Signal Transduction
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