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Erschienen in: Brain Structure and Function 2/2012

01.04.2012 | Original Article

Spinal projections from the presumptive midbrain locomotor region in the mouse

verfasst von: Huazheng Liang, George Paxinos, Charles Watson

Erschienen in: Brain Structure and Function | Ausgabe 2/2012

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Abstract

The mesencephalic locomotor region (MLR) plays an important role in the control of locomotion, but there is ongoing debate about the anatomy of its connections with the spinal cord. In this study, we have examined the spinal projections of the mouse precuneiform nucleus (PrCnF), which lies within the boundaries of the presumptive MLR. We used both retrograde and anterograde labeling techniques. Small clusters of labeled neurons were seen in the medial portion of the PrCnF following fluoro-gold injections in the upper cervical spinal cord. Fewer labeled neurons were seen in the PrCnF after upper thoracic injections. Following the injection of anterograde tracer (biotinylated dextran amine) into the PrCnF, labeled fibers were clearly observed in the spinal cord. These fibers traveled in the ventral and lateral funiculi, and terminated mainly in the medial portions of laminae 7, 8, and 9, as well as area 10, with an ipsilateral predominance. Our observations indicate that projections from the PrCnF to the spinal cord may provide an anatomical substrate for the role of the MLR in locomotion.
Literatur
Zurück zum Zitat Allen LF, Inglis WL, Winn P (1996) Is the cuneiform nucleus a critical component of the mesencephalic locomotor region? An examination of the effects of excitotoxic lesions of the cuneiform nucleus on spontaneous and nucleus accumbens induced locomotion. Brain Res Bull 41:201–210PubMedCrossRef Allen LF, Inglis WL, Winn P (1996) Is the cuneiform nucleus a critical component of the mesencephalic locomotor region? An examination of the effects of excitotoxic lesions of the cuneiform nucleus on spontaneous and nucleus accumbens induced locomotion. Brain Res Bull 41:201–210PubMedCrossRef
Zurück zum Zitat Altman J, Carpenter MB (1961) Fiber projections of superior colliculus in cat. J Comp Neurol 116:157–177PubMedCrossRef Altman J, Carpenter MB (1961) Fiber projections of superior colliculus in cat. J Comp Neurol 116:157–177PubMedCrossRef
Zurück zum Zitat Atsuta Y, Garcia-Rill E, Skinner RD (1990) Characteristics of electrically induced locomotion in rat in vitro brain stem-spinal cord preparation. J Neurophysiol 64:727–735PubMed Atsuta Y, Garcia-Rill E, Skinner RD (1990) Characteristics of electrically induced locomotion in rat in vitro brain stem-spinal cord preparation. J Neurophysiol 64:727–735PubMed
Zurück zum Zitat Basbaum AI, Fields HL (1979) The origin of descending pathways in the dorsolateral funiculus of the spinal cord of the cat and rat: further studies on the anatomy of pain modulation. J Comp Neurol 187:513–531PubMedCrossRef Basbaum AI, Fields HL (1979) The origin of descending pathways in the dorsolateral funiculus of the spinal cord of the cat and rat: further studies on the anatomy of pain modulation. J Comp Neurol 187:513–531PubMedCrossRef
Zurück zum Zitat Bernau NA, Puzdrowski RL, Leonard RB (1991) Identification of the midbrain locomotor region and its relation to descending locomotor pathways in the Atlantic stingray, Dasyatis sabina. Brain Res 557:83–94PubMedCrossRef Bernau NA, Puzdrowski RL, Leonard RB (1991) Identification of the midbrain locomotor region and its relation to descending locomotor pathways in the Atlantic stingray, Dasyatis sabina. Brain Res 557:83–94PubMedCrossRef
Zurück zum Zitat Bertrand S, Cazalets JR (2002) The respective contribution of lumbar segments to the generation of locomotion in the isolated spinal cord of newborn rat. Eur J Neurosci 16:1741–1750PubMedCrossRef Bertrand S, Cazalets JR (2002) The respective contribution of lumbar segments to the generation of locomotion in the isolated spinal cord of newborn rat. Eur J Neurosci 16:1741–1750PubMedCrossRef
Zurück zum Zitat Björkeland M, Boivie J (1984) The termination of spinomesencephalic fibers in cat. An experimental anatomical study. Anat Embryol 170(3):265–277PubMedCrossRef Björkeland M, Boivie J (1984) The termination of spinomesencephalic fibers in cat. An experimental anatomical study. Anat Embryol 170(3):265–277PubMedCrossRef
Zurück zum Zitat Bonnot A, Morin D (1998) Hemisegmental localisation of rhythmic networks in the lumbosacral spinal cord of neonate mouse. Brain Res 793:136–148PubMedCrossRef Bonnot A, Morin D (1998) Hemisegmental localisation of rhythmic networks in the lumbosacral spinal cord of neonate mouse. Brain Res 793:136–148PubMedCrossRef
Zurück zum Zitat Bonnot A, Whelan PJ, Mentis GZ, O’Donovan MJ (2002) Locomotor-like activity generated by the neonatal mouse spinal cord. Brain Res Brain Res Rev 40:141–151PubMedCrossRef Bonnot A, Whelan PJ, Mentis GZ, O’Donovan MJ (2002) Locomotor-like activity generated by the neonatal mouse spinal cord. Brain Res Brain Res Rev 40:141–151PubMedCrossRef
Zurück zum Zitat Bracci E, Ballerini L, Nistri A (1996) Localization of rhythmogenic networks responsible for spontaneous bursts induced by strychnine and bicuculline in the rat isolated spinal cord. J Neurosci 16:7063–7076PubMed Bracci E, Ballerini L, Nistri A (1996) Localization of rhythmogenic networks responsible for spontaneous bursts induced by strychnine and bicuculline in the rat isolated spinal cord. J Neurosci 16:7063–7076PubMed
Zurück zum Zitat Castiglioni AJ, Gallaway MC, Coulter JD (1978) Spinal projections from midbrain in monkey. J Comp Neurol 178:329–345PubMedCrossRef Castiglioni AJ, Gallaway MC, Coulter JD (1978) Spinal projections from midbrain in monkey. J Comp Neurol 178:329–345PubMedCrossRef
Zurück zum Zitat Cazalets JR, Borde M, Clarac F (1995) Localization and organization of the central pattern generator for hindlimb locomotion in newborn rat. J Neurosci 15:4943–4951PubMed Cazalets JR, Borde M, Clarac F (1995) Localization and organization of the central pattern generator for hindlimb locomotion in newborn rat. J Neurosci 15:4943–4951PubMed
Zurück zum Zitat Christie KJ, Whelan PJ (2005) Monoaminergic establishment of rostrocaudal gradients of rhythmicity in the neonatal mouse spinal cord. J Neurophysiol 94:1554–1564PubMedCrossRef Christie KJ, Whelan PJ (2005) Monoaminergic establishment of rostrocaudal gradients of rhythmicity in the neonatal mouse spinal cord. J Neurophysiol 94:1554–1564PubMedCrossRef
Zurück zum Zitat Cina C, Hochman S (2000) Diffuse distribution of sulforhodamine-labeled neurons during serotonin-evoked locomotion in the neonatal rat thoracolumbar spinal cord. J Comp Neurol 423:590–602PubMedCrossRef Cina C, Hochman S (2000) Diffuse distribution of sulforhodamine-labeled neurons during serotonin-evoked locomotion in the neonatal rat thoracolumbar spinal cord. J Comp Neurol 423:590–602PubMedCrossRef
Zurück zum Zitat Coles SK, Iles JF, Nicolopoulos-Stournaras S (1989) The mesencephalic centre controlling locomotion in the rat. Neurosci 28:149–157CrossRef Coles SK, Iles JF, Nicolopoulos-Stournaras S (1989) The mesencephalic centre controlling locomotion in the rat. Neurosci 28:149–157CrossRef
Zurück zum Zitat Cowie RJ, Holstege G (1992) Dorsal mesencephalic projections to pons, medulla, and spinal cord in the cat: limbic and non-limbic components. J Comp Neurol 319:536–559PubMedCrossRef Cowie RJ, Holstege G (1992) Dorsal mesencephalic projections to pons, medulla, and spinal cord in the cat: limbic and non-limbic components. J Comp Neurol 319:536–559PubMedCrossRef
Zurück zum Zitat Cowley KC, Zaporozhets E, Schmidt BJ (2010) Propriospinal transmission of the locomotor command signal in the neonatal rat. Ann N Y Acad Sci 1198:42–53PubMedCrossRef Cowley KC, Zaporozhets E, Schmidt BJ (2010) Propriospinal transmission of the locomotor command signal in the neonatal rat. Ann N Y Acad Sci 1198:42–53PubMedCrossRef
Zurück zum Zitat Craig AD (1995) Distribution of brainstem projections from spinal lamina I neurons in the cat and the monkey. J Comp Neurol 361:225–248PubMedCrossRef Craig AD (1995) Distribution of brainstem projections from spinal lamina I neurons in the cat and the monkey. J Comp Neurol 361:225–248PubMedCrossRef
Zurück zum Zitat Dai X, Noga BR, Douglas JR, Jordan LM (2005) Localization of spinal neurons activated during locomotion using the c-fos immunohistochemical method. J Neurophysiol 93:3442–3452PubMedCrossRef Dai X, Noga BR, Douglas JR, Jordan LM (2005) Localization of spinal neurons activated during locomotion using the c-fos immunohistochemical method. J Neurophysiol 93:3442–3452PubMedCrossRef
Zurück zum Zitat Degtyarenko AM, Simon ES, Burke RE (1998) Locomotor modulation of disynaptic EPSPs from the mesencephalic locomotor region in cat motoneurons. J Neurophysiol 80:3284–3296PubMed Degtyarenko AM, Simon ES, Burke RE (1998) Locomotor modulation of disynaptic EPSPs from the mesencephalic locomotor region in cat motoneurons. J Neurophysiol 80:3284–3296PubMed
Zurück zum Zitat Franklin KBJ, Paxinos G (2008) The mouse brain in stereotaxic coordinates, 3rd edn. Elsevier Academic Press, San Diego Franklin KBJ, Paxinos G (2008) The mouse brain in stereotaxic coordinates, 3rd edn. Elsevier Academic Press, San Diego
Zurück zum Zitat Garcia-Rill E, Skinner RD, Gilmore S, Owing R (1983) Connections of the mesencephalic locomotor region (MLR) II. Afferents and efferents. Brain Res Bull 10:63–71PubMedCrossRef Garcia-Rill E, Skinner RD, Gilmore S, Owing R (1983) Connections of the mesencephalic locomotor region (MLR) II. Afferents and efferents. Brain Res Bull 10:63–71PubMedCrossRef
Zurück zum Zitat Garcia-Rill E (1983) Connections of the mesencephalic locomotor region (MLR) III. Intracellular recordings. Brain Res Bull 10:73–81PubMedCrossRef Garcia-Rill E (1983) Connections of the mesencephalic locomotor region (MLR) III. Intracellular recordings. Brain Res Bull 10:73–81PubMedCrossRef
Zurück zum Zitat Garcia-Rill E, Skinner RD, Fitzgerald JA (1985) Chemical activation of the mesencephalic locomotor region. Brain Res 330:43–54PubMedCrossRef Garcia-Rill E, Skinner RD, Fitzgerald JA (1985) Chemical activation of the mesencephalic locomotor region. Brain Res 330:43–54PubMedCrossRef
Zurück zum Zitat Garcia-Rill E, Houser CR, Skinner RD, Smith W, Woodward DJ (1987) Locomotion-inducing sites in the vicinity of the pedunculopontine nucleus. Brain Res Bull 18:731–738PubMedCrossRef Garcia-Rill E, Houser CR, Skinner RD, Smith W, Woodward DJ (1987) Locomotion-inducing sites in the vicinity of the pedunculopontine nucleus. Brain Res Bull 18:731–738PubMedCrossRef
Zurück zum Zitat Garcia-Rill E, Skinner RD (1987) The mesencephalic locomotor region. II. Projections to reticulospinal neurons. Brain Res 411:13–20PubMedCrossRef Garcia-Rill E, Skinner RD (1987) The mesencephalic locomotor region. II. Projections to reticulospinal neurons. Brain Res 411:13–20PubMedCrossRef
Zurück zum Zitat Graham J (1977) Autoradiographic study of efferent connections of superior colliculus in cat. J Comp Neurol 173:629–654PubMedCrossRef Graham J (1977) Autoradiographic study of efferent connections of superior colliculus in cat. J Comp Neurol 173:629–654PubMedCrossRef
Zurück zum Zitat Grillner S, Zangger P (1979) On the central generation of locomotion in the low spinal cat. Exp Brain Res 34:241–261PubMedCrossRef Grillner S, Zangger P (1979) On the central generation of locomotion in the low spinal cat. Exp Brain Res 34:241–261PubMedCrossRef
Zurück zum Zitat Harting JK (1977) Descending pathways from the superior collicullus: an autoradiographic analysis in the rhesus monkey (Macaca mulatta). J Comp Neurol 173:583–612PubMedCrossRef Harting JK (1977) Descending pathways from the superior collicullus: an autoradiographic analysis in the rhesus monkey (Macaca mulatta). J Comp Neurol 173:583–612PubMedCrossRef
Zurück zum Zitat Hylden JL, Anton F, Nahin RL (1989) Spinal lamina I projection neurons in the rat: collateral innervation of parabrachial area and thalamus. Neuroscience 28:27–37PubMedCrossRef Hylden JL, Anton F, Nahin RL (1989) Spinal lamina I projection neurons in the rat: collateral innervation of parabrachial area and thalamus. Neuroscience 28:27–37PubMedCrossRef
Zurück zum Zitat Juvin L, Simmers J, Morin D (2005) Propriospinal circuitry underlying interlimb coordination in mammalian quadrupedal locomotion. J Neurosci 25:6025–6035PubMedCrossRef Juvin L, Simmers J, Morin D (2005) Propriospinal circuitry underlying interlimb coordination in mammalian quadrupedal locomotion. J Neurosci 25:6025–6035PubMedCrossRef
Zurück zum Zitat Kjaerulff O, Barajon I, Kiehn O (1994) Sulphorhodamine-labeled cells in the neonatal rat spinal cord following chemically induced locomotor activity in vitro. J Physiol 478:265–273PubMed Kjaerulff O, Barajon I, Kiehn O (1994) Sulphorhodamine-labeled cells in the neonatal rat spinal cord following chemically induced locomotor activity in vitro. J Physiol 478:265–273PubMed
Zurück zum Zitat Kjaerulff O, Kiehn O (1996) Distribution of networks generating and coordinating locomotor activity in the neonatal rat spinal cord in vitro: a lesion study. J Neurosci 16:5777–5794PubMed Kjaerulff O, Kiehn O (1996) Distribution of networks generating and coordinating locomotor activity in the neonatal rat spinal cord in vitro: a lesion study. J Neurosci 16:5777–5794PubMed
Zurück zum Zitat Kuypers HG, Maisky VA (1975) Retrograde axonal transport of horseradish peroxidase from spinal cord to brain stem cell groups in the cat. Neurosci Lett 1:9–14PubMedCrossRef Kuypers HG, Maisky VA (1975) Retrograde axonal transport of horseradish peroxidase from spinal cord to brain stem cell groups in the cat. Neurosci Lett 1:9–14PubMedCrossRef
Zurück zum Zitat Liang HZ, Paxinos G, Watson C (2011) Projections from the brain to the spinal cord in the mouse. Brain Struct Funct 215:159–186PubMedCrossRef Liang HZ, Paxinos G, Watson C (2011) Projections from the brain to the spinal cord in the mouse. Brain Struct Funct 215:159–186PubMedCrossRef
Zurück zum Zitat Magnuson DS, Lovett R, Coffee C, Gray R, Han Y, Zhang YP, Burke DA (2005) Functional consequences of lumbar spinal cord contusion injuries in the adult rat. J Neurotrauma 22:529–543PubMedCrossRef Magnuson DS, Lovett R, Coffee C, Gray R, Han Y, Zhang YP, Burke DA (2005) Functional consequences of lumbar spinal cord contusion injuries in the adult rat. J Neurotrauma 22:529–543PubMedCrossRef
Zurück zum Zitat Martin GF (1969) Efferent tectal pathways of opossum (Didelphis Virginiana). J Comp Neurol 135:209–224PubMedCrossRef Martin GF (1969) Efferent tectal pathways of opossum (Didelphis Virginiana). J Comp Neurol 135:209–224PubMedCrossRef
Zurück zum Zitat Masson RL, Sparkes ML, Ritz LA (1991) Descending projections to the rat sacrocaudal spinal cord. J Comp Neurol 307:120–130PubMedCrossRef Masson RL, Sparkes ML, Ritz LA (1991) Descending projections to the rat sacrocaudal spinal cord. J Comp Neurol 307:120–130PubMedCrossRef
Zurück zum Zitat Miller KE, Douglas VD, Richards AB, Chandler MJ, Foreman RD (1998) Propriospinal neurons in the C1–C2 spinal segments project to the L5–S1 segments of the rat spinal cord. Brain Res Bull 47:43–47PubMedCrossRef Miller KE, Douglas VD, Richards AB, Chandler MJ, Foreman RD (1998) Propriospinal neurons in the C1–C2 spinal segments project to the L5–S1 segments of the rat spinal cord. Brain Res Bull 47:43–47PubMedCrossRef
Zurück zum Zitat Mouton LJ, Holstege G (1994) The periaqueductal gray in the cat projects to lamina VIII and the medial part of lamina VII throughout the length of the spinal cord. Exp Brain Res 101:253–264PubMedCrossRef Mouton LJ, Holstege G (1994) The periaqueductal gray in the cat projects to lamina VIII and the medial part of lamina VII throughout the length of the spinal cord. Exp Brain Res 101:253–264PubMedCrossRef
Zurück zum Zitat Noga BR, Kriellaars DJ, Brownstone RM, Jordan LM (2003) Mechanism for activation of locomotor centers in the spinal cord by stimulation of the mesencephalic locomotor region. J Neurophysiol 90:1464–1478PubMedCrossRef Noga BR, Kriellaars DJ, Brownstone RM, Jordan LM (2003) Mechanism for activation of locomotor centers in the spinal cord by stimulation of the mesencephalic locomotor region. J Neurophysiol 90:1464–1478PubMedCrossRef
Zurück zum Zitat Nudo RJ, Masterton RB (1988) Descending pathways to the spinal-cord—a comparative study of 22 mammals. J Comp Neurol 277:53–79PubMedCrossRef Nudo RJ, Masterton RB (1988) Descending pathways to the spinal-cord—a comparative study of 22 mammals. J Comp Neurol 277:53–79PubMedCrossRef
Zurück zum Zitat Nyberg-Hansen R (1964) The location and termination of tectospinal fibers in the cat. Exp Neurol 9:212–227PubMedCrossRef Nyberg-Hansen R (1964) The location and termination of tectospinal fibers in the cat. Exp Neurol 9:212–227PubMedCrossRef
Zurück zum Zitat Panneton WM, Watson BJ (1991) Stereotaxic atlas of the brainstem of the muskrat, Ondatra zibethicus. Brain Res Bull 26:479–509PubMedCrossRef Panneton WM, Watson BJ (1991) Stereotaxic atlas of the brainstem of the muskrat, Ondatra zibethicus. Brain Res Bull 26:479–509PubMedCrossRef
Zurück zum Zitat Paxinos G, Watson C (2007) The rat brain in stereotaxic coordinates, 6th edn. Elsevier Academic Press, San Diego Paxinos G, Watson C (2007) The rat brain in stereotaxic coordinates, 6th edn. Elsevier Academic Press, San Diego
Zurück zum Zitat Paxinos G, Watson C, Carrive P, Kirkcaldie M, Ashwell KWS (2009a) Chemoarchitectonic atlas of the rat brain, 2nd edn. Elsevier Academic Press, San Diego Paxinos G, Watson C, Carrive P, Kirkcaldie M, Ashwell KWS (2009a) Chemoarchitectonic atlas of the rat brain, 2nd edn. Elsevier Academic Press, San Diego
Zurück zum Zitat Paxinos G, Huang XF, Petrides M, Toga AW (2009b) The rhesus monkey brain in stereotaxic coordinates, 2nd edn. Elsevier Academic Press, San Diego Paxinos G, Huang XF, Petrides M, Toga AW (2009b) The rhesus monkey brain in stereotaxic coordinates, 2nd edn. Elsevier Academic Press, San Diego
Zurück zum Zitat Satoda T, Matsumoto H, Zhou L, Rose PK, Richmond FJ (2002) Mesencephalic projections to the first cervical segment in the cat. Exp Brain Res 144:397–413PubMedCrossRef Satoda T, Matsumoto H, Zhou L, Rose PK, Richmond FJ (2002) Mesencephalic projections to the first cervical segment in the cat. Exp Brain Res 144:397–413PubMedCrossRef
Zurück zum Zitat Skinner RD, Garcia-Rill E (1984) The mesencephalic locomotor region (MLR) in the rat. Brain Res 323:385–389PubMedCrossRef Skinner RD, Garcia-Rill E (1984) The mesencephalic locomotor region (MLR) in the rat. Brain Res 323:385–389PubMedCrossRef
Zurück zum Zitat Swanson LW (1998) Brain maps: structure of the rat brain, 2nd edn. Academic Press, New York Swanson LW (1998) Brain maps: structure of the rat brain, 2nd edn. Academic Press, New York
Zurück zum Zitat Tresch MC, Kiehn O (1999) Coding of locomotor phase in populations of neurons in rostral and caudal segments of the neonatal rat lumbar spinal cord. J Neurophysiol 82:3563–3574PubMed Tresch MC, Kiehn O (1999) Coding of locomotor phase in populations of neurons in rostral and caudal segments of the neonatal rat lumbar spinal cord. J Neurophysiol 82:3563–3574PubMed
Zurück zum Zitat VanderHorst VG, Ulfhake B (2006) The organization of the brainstem and spinal cord of the mouse: relationships between monoaminergic, cholinergic, and spinal projection systems. J Chem Neuroanat 31:2–36PubMedCrossRef VanderHorst VG, Ulfhake B (2006) The organization of the brainstem and spinal cord of the mouse: relationships between monoaminergic, cholinergic, and spinal projection systems. J Chem Neuroanat 31:2–36PubMedCrossRef
Zurück zum Zitat Watson C, Paxinos G (2010) Chemoarchitectonic atlas of the mouse brain. Elsevier Academic Press, San Diego Watson C, Paxinos G (2010) Chemoarchitectonic atlas of the mouse brain. Elsevier Academic Press, San Diego
Zurück zum Zitat Watson C, Paxinos G, Kayalioglu G, Heise C (2009) Atlas of the mouse spinal cord. In: Watson C, Paxinos G, Kayalioglu G (eds) The spinal cord. Elsevier Academic Press, San Diego, pp 308–379CrossRef Watson C, Paxinos G, Kayalioglu G, Heise C (2009) Atlas of the mouse spinal cord. In: Watson C, Paxinos G, Kayalioglu G (eds) The spinal cord. Elsevier Academic Press, San Diego, pp 308–379CrossRef
Zurück zum Zitat Yasui Y, Ono K, Tsumori T, Yokota S, Kishi T (1998) Tectal projections to the parvicellular reticular formation and the upper cervical spinal cord in the rat, with special reference to axon collateral innervation. Brain Res 804:149–154PubMedCrossRef Yasui Y, Ono K, Tsumori T, Yokota S, Kishi T (1998) Tectal projections to the parvicellular reticular formation and the upper cervical spinal cord in the rat, with special reference to axon collateral innervation. Brain Res 804:149–154PubMedCrossRef
Metadaten
Titel
Spinal projections from the presumptive midbrain locomotor region in the mouse
verfasst von
Huazheng Liang
George Paxinos
Charles Watson
Publikationsdatum
01.04.2012
Verlag
Springer-Verlag
Erschienen in
Brain Structure and Function / Ausgabe 2/2012
Print ISSN: 1863-2653
Elektronische ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-011-0337-6

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