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Master or servant? emerging roles for motor neuron subtypes in the construction and evolution of locomotor circuits

Dasen, Jeremy S
Execution of motor behaviors relies on the ability of circuits within the nervous system to engage functionally relevant subtypes of spinal motor neurons. While much attention has been given to the role of networks of spinal interneurons on setting the rhythm and pattern of output from locomotor circuits, recent studies suggest that motor neurons themselves can exert an instructive role in shaping the wiring and functional properties of locomotor networks. Alteration in the distribution of motor neuron subtypes also appears to have contributed to evolutionary transitions in the locomotor strategies used by land vertebrates. This review describes emerging evidence that motor neuron-derived cues can have a profound influence on the organization, wiring, and evolutionary diversification of locomotor circuits.
PMCID:5316365
PMID: 27907815
ISSN: 1873-6882
CID: 2329422

A viral strategy for targeting and manipulating interneurons across vertebrate species

Dimidschstein, Jordane; Chen, Qian; Tremblay, Robin; Rogers, Stephanie L; Saldi, Giuseppe-Antonio; Guo, Lihua; Xu, Qing; Liu, Runpeng; Lu, Congyi; Chu, Jianhua; Avery, Michael C; Rashid, Mohammad S; Baek, Myungin; Jacob, Amanda L; Smith, Gordon B; Wilson, Daniel E; Kosche, Georg; Kruglikov, Illya; Rusielewicz, Tomasz; Kotak, Vibhakar C; Mowery, Todd M; Anderson, Stewart A; Callaway, Edward M; Dasen, Jeremy S; Fitzpatrick, David; Fossati, Valentina; Long, Michael A; Noggle, Scott; Reynolds, John H; Sanes, Dan H; Rudy, Bernardo; Feng, Guoping; Fishell, Gord
A fundamental impediment to understanding the brain is the availability of inexpensive and robust methods for targeting and manipulating specific neuronal populations. The need to overcome this barrier is pressing because there are considerable anatomical, physiological, cognitive and behavioral differences between mice and higher mammalian species in which it is difficult to specifically target and manipulate genetically defined functional cell types. In particular, it is unclear the degree to which insights from mouse models can shed light on the neural mechanisms that mediate cognitive functions in higher species, including humans. Here we describe a novel recombinant adeno-associated virus that restricts gene expression to GABAergic interneurons within the telencephalon. We demonstrate that the viral expression is specific and robust, allowing for morphological visualization, activity monitoring and functional manipulation of interneurons in both mice and non-genetically tractable species, thus opening the possibility to study GABAergic function in virtually any vertebrate species.
PMCID:5348112
PMID: 27798629
ISSN: 1546-1726
CID: 2297132

Parallel Pbx-Dependent Pathways Govern the Coalescence and Fate of Motor Columns

Hanley, Olivia; Zewdu, Rediet; Cohen, Lisa J; Jung, Heekyung; Lacombe, Julie; Philippidou, Polyxeni; Lee, David H; Selleri, Licia; Dasen, Jeremy S
The clustering of neurons sharing similar functional properties and connectivity is a common organizational feature of vertebrate nervous systems. Within motor networks, spinal motor neurons (MNs) segregate into longitudinally arrayed subtypes, establishing a central somatotopic map of peripheral target innervation. MN organization and connectivity relies on Hox transcription factors expressed along the rostrocaudal axis; however, the developmental mechanisms governing the orderly arrangement of MNs are largely unknown. We show that Pbx genes, which encode Hox cofactors, are essential for the segregation and clustering of neurons within motor columns. In the absence of Pbx1 and Pbx3 function, Hox-dependent programs are lost and the remaining MN subtypes are unclustered and disordered. Identification of Pbx gene targets revealed an unexpected and apparently Hox-independent role in defining molecular features of dorsally projecting medial motor column (MMC) neurons. These results indicate Pbx genes act in parallel genetic pathways to orchestrate neuronal subtype differentiation, connectivity, and organization.
PMCID:5017921
PMID: 27568519
ISSN: 1097-4199
CID: 2232352

Hox Proteins Coordinate Motor Neuron Differentiation and Connectivity Programs through Ret/Gfralpha Genes

Catela, Catarina; Shin, Maggie M; Lee, David H; Liu, Jeh-Ping; Dasen, Jeremy S
The accuracy of neural circuit assembly relies on the precise spatial and temporal control of synaptic specificity determinants during development. Hox transcription factors govern key aspects of motor neuron (MN) differentiation; however, the terminal effectors of their actions are largely unknown. We show that Hox/Hox cofactor interactions coordinate MN subtype diversification and connectivity through Ret/Gfralpha receptor genes. Hox and Meis proteins determine the levels of Ret in MNs and define the intrasegmental profiles of Gfralpha1 and Gfralpha3 expression. Loss of Ret or Gfralpha3 leads to MN specification and innervation defects similar to those observed in Hox mutants, while expression of Ret and Gfralpha1 can bypass the requirement for Hox genes during MN pool differentiation. These studies indicate that Hox proteins contribute to neuronal fate and muscle connectivity through controlling the levels and pattern of cell surface receptor expression, consequently gating the ability of MNs to respond to limb-derived instructive cues.
PMCID:4775310
PMID: 26904955
ISSN: 2211-1247
CID: 1965412

Sensory-Motor Circuits: Hox Genes Get in Touch

Philippidou, Polyxeni; Dasen, Jeremy S
Sensory-motor reflex circuits are the basic units from which animal nervous systems are constructed, yet little is known regarding how connections within these simple networks are established. In papers in Cell Reports and in this issue of Neuron, Zheng et al. (2015a, 2015b) demonstrate that coordinate activities of Hox genes in sensory neurons and interneurons govern connectivity within touch-reflex circuits in C. elegans.
PMID: 26539884
ISSN: 1097-4199
CID: 1825962

Evolution of Patterning Systems and Circuit Elements for Locomotion

Jung, Heekyung; Dasen, Jeremy S
Evolutionary modifications in nervous systems enabled organisms to adapt to their specific environments and underlie the remarkable diversity of behaviors expressed by animals. Resolving the pathways that shaped and modified neural circuits during evolution remains a significant challenge. Comparative studies have revealed a surprising conservation in the intrinsic signaling systems involved in early patterning of bilaterian nervous systems but also raise the question of how neural circuit compositions and architectures evolved within specific animal lineages. In this review, we argue that within the spinal cord a flexible system involving modulation of rostrocaudal positional information, acting in the context of a relatively uniform DV patterning system, can act to modify neuronal organization and connectivity within circuits governing a specific locomotor output.
PMCID:4339819
PMID: 25710528
ISSN: 1534-5807
CID: 1473712

Assembly and Function of Spinal Circuits for Motor Control

Catela, Catarina; Shin, Maggie M; Dasen, Jeremy S
Control of movement is a fundamental and complex task of the vertebrate nervous system, which relies on communication between circuits distributed throughout the brain and spinal cord. Many of the networks essential for the execution of basic locomotor behaviors are composed of discrete neuronal populations residing within the spinal cord. The organization and connectivity of these circuits is established through programs that generate functionally diverse neuronal subtypes, each contributing to a specific facet of motor output. Significant progress has been made in deciphering how neuronal subtypes are specified and in delineating the guidance and synaptic specificity determinants at the core of motor circuit assembly. Recent studies have shed light on the basic principles linking locomotor circuit connectivity with function, and they are beginning to reveal how more sophisticated motor behaviors are encoded. In this review, we discuss the impact of developmental programs in specifying motor behaviors governed by spinal circuits. Expected final online publication date for the Annual Review of Cell and Developmental Biology Volume 31 is October 06, 2015. Please see http://www.annualreviews.org/catalog/pubdates.aspx for revised estimates.
PMID: 26393773
ISSN: 1530-8995
CID: 1786772

Evolving hox activity profiles govern diversity in locomotor systems

Jung, Heekyung; Mazzoni, Esteban O; Soshnikova, Natalia; Hanley, Olivia; Venkatesh, Byrappa; Duboule, Denis; Dasen, Jeremy S
The emergence of limb-driven locomotor behaviors was a key event in the evolution of vertebrates and fostered the transition from aquatic to terrestrial life. We show that the generation of limb-projecting lateral motor column (LMC) neurons in mice relies on a transcriptional autoregulatory module initiated via transient activity of multiple genes within the HoxA and HoxC clusters. Repression of this module at thoracic levels restricts expression of LMC determinants, thus dictating LMC position relative to the limbs. This suppression is mediated by a key regulatory domain that is specifically found in the Hoxc9 proteins of appendage-bearing vertebrates. The profile of Hoxc9 expression inversely correlates with LMC position in land vertebrates and likely accounts for the absence of LMC neurons in limbless species such as snakes. Thus, modulation of both Hoxc9 protein function and Hoxc9 gene expression likely contributed to evolutionary transitions between undulatory and ambulatory motor circuit connectivity programs.
PMCID:4024207
PMID: 24746670
ISSN: 1534-5807
CID: 960142

Long Noncoding RNAs in Development: Solidifying the Lncs to Hox Gene Regulation

Dasen, Jeremy S
Long noncoding RNAs (lncRNAs) are pervasively expressed in mammals, although their functions during development remain poorly understood. In this issue of Cell Reports, Delpretti et al. and Li et al. suggest essential roles for lncRNAs in coordinating Hox gene expression.
PMID: 24139230
ISSN: 2211-1247
CID: 586392

Hox genes: choreographers in neural development, architects of circuit organization

Philippidou, Polyxeni; Dasen, Jeremy S
The neural circuits governing vital behaviors, such as respiration and locomotion, are comprised of discrete neuronal populations residing within the brainstem and spinal cord. Work over the past decade has provided a fairly comprehensive understanding of the developmental pathways that determine the identity of major neuronal classes within the neural tube. However, the steps through which neurons acquire the subtype diversities necessary for their incorporation into a particular circuit are still poorly defined. Studies on the specification of motor neurons indicate that the large family of Hox transcription factors has a key role in generating the subtypes required for selective muscle innervation. There is also emerging evidence that Hox genes function in multiple neuronal classes to shape synaptic specificity during development, suggesting a broader role in circuit assembly. This Review highlights the functions and mechanisms of Hox gene networks and their multifaceted roles during neuronal specification and connectivity.
PMCID:3835187
PMID: 24094100
ISSN: 0896-6273
CID: 574112