Skip to main content
Top
Published in: Brain Structure and Function 1/2018

01-01-2018 | Original Article

Neuroanatomy of pain-deficiency and cross-modal activation in calcium channel subunit (CACN) α2δ3 knockout mice

Authors: Julia Landmann, Franziska Richter, Ana-Maria Oros-Peusquens, N. Jon Shah, Joseph Classen, G. Gregory Neely, Angelika Richter, Josef M. Penninger, Ingo Bechmann

Published in: Brain Structure and Function | Issue 1/2018

Login to get access

Abstract

The phenotype of calcium channel subunit (CACN) α2δ3 knockout (KO) mice includes sensory cross-activation and deficient pain perception. Sensory cross-activation defines the activation of a sensory cortical region by input from another modality due to reorganization in the brain such as after sensory loss. To obtain mechanistic insight into both phenomena, we employed a comprehensive battery of neuroanatomical techniques. While CACNα2δ3 was ubiquitously expressed in wild-type mice, it was absent in α2δ3 KO animals. Immunostaining of α1A, α1B, and α1E revealed upregulation of N-type and R-type, but not P/Q-type Cav2 channels in cortical neurons of CACNα2δ3 KO mice. Compared to wild-type mice, axonal processes in somatosensory cortex were enhanced, and dendritic processes reduced, in CACNα2δ3 KO mice. Immunohistochemical and MRI analyses, investigating morphology, thalamocortical and intra-/intercortical trajectories, revealed a disparity between projection and commissural fibers with reduction of the number of spatial specificity of thalamocortical projections. L1cam staining revealed wide-ranging projections of thalamocortical fibers reaching both somatosensory/motor and visual cortical areas. Activation (c-fos+) of excitatory and inhibitory neurons suggested that deficient pain perception in α2δ3 KO mice is unlikely to result from cortical disinhibition. Collectively, our data demonstrate that knock out of CACN α2δ3 results in some structural abnormalities whose functional implications converge to dedifferentiation of sensory activation.
Appendix
Available only for authorised users
Literature
go back to reference Akshoomoff N, Pierce K, Courchesne E (2002) The neurobiological basis of autism from a developmental perspective. Dev Psychopathol 14:613–634CrossRefPubMed Akshoomoff N, Pierce K, Courchesne E (2002) The neurobiological basis of autism from a developmental perspective. Dev Psychopathol 14:613–634CrossRefPubMed
go back to reference Andrews W, Liapi A, Plachez C, Camurri L, Zhang J, Mori S, Murakami F, Parnavelas JG, Sundaresan V, Richards LJ (2006) Robo1 regulates the development of major axon tracts and interneuron migration in the forebrain. Development 133:2243–2252. doi:10.1242/dev.02379 CrossRefPubMed Andrews W, Liapi A, Plachez C, Camurri L, Zhang J, Mori S, Murakami F, Parnavelas JG, Sundaresan V, Richards LJ (2006) Robo1 regulates the development of major axon tracts and interneuron migration in the forebrain. Development 133:2243–2252. doi:10.​1242/​dev.​02379 CrossRefPubMed
go back to reference Asada H, Kawamura Y, Maruyama K, Kume H, Ding R, Kanbara N, Kuzume H, Sanbo M, Yagi T, Obata K (1997) Cleft palate and decreased brain g-aminobutyric acid in mice lacking the 67-kDa isoform of glutamic acid decarboxylase. PNAS 94:6496–6499CrossRefPubMedPubMedCentral Asada H, Kawamura Y, Maruyama K, Kume H, Ding R, Kanbara N, Kuzume H, Sanbo M, Yagi T, Obata K (1997) Cleft palate and decreased brain g-aminobutyric acid in mice lacking the 67-kDa isoform of glutamic acid decarboxylase. PNAS 94:6496–6499CrossRefPubMedPubMedCentral
go back to reference Asher JE, Lamb JA, Brocklebank D, Cazier J, Maestrini E, Addis L, Sen M, Baron-Cohen S, Monaco AP (2009) A whole-genome scan and fine-mapping linkage study of auditory-visual synesthesia reveals evidence of linkage to chromosomes 2q24, 5q33, 6p12, and 12p12. AJHG 84:279–285. doi:10.1016/j.ajhg.2009.01.012 CrossRef Asher JE, Lamb JA, Brocklebank D, Cazier J, Maestrini E, Addis L, Sen M, Baron-Cohen S, Monaco AP (2009) A whole-genome scan and fine-mapping linkage study of auditory-visual synesthesia reveals evidence of linkage to chromosomes 2q24, 5q33, 6p12, and 12p12. AJHG 84:279–285. doi:10.​1016/​j.​ajhg.​2009.​01.​012 CrossRef
go back to reference Barclay J, Balaguero N, Mione M, Ackerman SL, Letts VA, Brodbeck J, Canti C, Meir A, Page KM, Kusumi K, Perez-Reyes E, Lander ES, Frankel WN, Gardiner RM, Dolphin AC, Rees M (2001) Ducky mouse phenotype of epilepsy and ataxia is associated with mutations in the Cacna2d2 gene and decreased calcium channel current in cerebellar Purkinje cells. J Neurosci 21:6095–6104PubMed Barclay J, Balaguero N, Mione M, Ackerman SL, Letts VA, Brodbeck J, Canti C, Meir A, Page KM, Kusumi K, Perez-Reyes E, Lander ES, Frankel WN, Gardiner RM, Dolphin AC, Rees M (2001) Ducky mouse phenotype of epilepsy and ataxia is associated with mutations in the Cacna2d2 gene and decreased calcium channel current in cerebellar Purkinje cells. J Neurosci 21:6095–6104PubMed
go back to reference Baron-Cohen S, Johnson D, Asher JE, Wheelwright S, Fisher SE, Gregersen PK, Allison C (2013) Is synaesthesia more common in autism? Mol Autism. doi:10.1186/2040-2392-4-40 Baron-Cohen S, Johnson D, Asher JE, Wheelwright S, Fisher SE, Gregersen PK, Allison C (2013) Is synaesthesia more common in autism? Mol Autism. doi:10.​1186/​2040-2392-4-40
go back to reference Cesaroni L, Garber M (1991) Exploring the experience of autism through firsthand accounts. J Autism Dev Disord 21:303–313CrossRefPubMed Cesaroni L, Garber M (1991) Exploring the experience of autism through firsthand accounts. J Autism Dev Disord 21:303–313CrossRefPubMed
go back to reference Conti F, DeBiasi S, Minelli A, Rothstein JD, Melone M (1998) EAAC1, a high-affinity glutamate transporter, is localized to astrocytes and gabaergic neurons besides pyramidal cells in the rat cerebral cortex. Cereb Cortex 8:108–116CrossRefPubMed Conti F, DeBiasi S, Minelli A, Rothstein JD, Melone M (1998) EAAC1, a high-affinity glutamate transporter, is localized to astrocytes and gabaergic neurons besides pyramidal cells in the rat cerebral cortex. Cereb Cortex 8:108–116CrossRefPubMed
go back to reference Corteen NL, Carter JA, Rudolph U, Belelli D, Lambert JJ, Swinny JD (2015) Localisation and stress-induced plasticity of GABAA receptor subunits within the cellular networks of the mouse dorsal raphe nucleus. Brain Struct Funct 220:2739–2763. doi:10.1007/s00429-014-0824-7 CrossRefPubMed Corteen NL, Carter JA, Rudolph U, Belelli D, Lambert JJ, Swinny JD (2015) Localisation and stress-induced plasticity of GABAA receptor subunits within the cellular networks of the mouse dorsal raphe nucleus. Brain Struct Funct 220:2739–2763. doi:10.​1007/​s00429-014-0824-7 CrossRefPubMed
go back to reference De Rubeis S, He X, Goldberg AP, Poultney CS, Samocha K, Cicek AE, Kou Y, Liu L, Fromer M, Walker S, Singh T, Klei L, Kosmicki J, Shih-Chen F, Aleksic B, Biscaldi M, Bolton PF, Brownfeld JM, Cai J, Campbell NG, Carracedo A, Chahrour MH, Chiocchetti AG, Coon H, Crawford EL, Curran SR, Dawson G, Duketis E, Fernandez BA, Gallagher L, Geller E, Guter SJ, Hill RS, Ionita-Laza J, Jimenz Gonzalez P, Kilpinen H, Klauck SM, Kolevzon A, Lee I, Lei I, Lei J, Lehtimaki T, Lin C, Ma’ayan A, Marshall CR, McInnes AL, Neale B, Owen MJ, Ozaki N, Parellada M, Parr JR, Purcell S, Puura K, Rajagopalan D, Rehnstrom K, Reichenberg A, Sabo A, Sachse M, Sanders SJ, Schafer C, Schulte-Ruther M, Skuse D, Stevens C, Szatmari P, Tammimies K, Valladares O, Voran A, Li-San W, Weiss LA, Willsey AJ, Yu TW, Yuen RKC, Cook EH, Freitag CM, Gill M, Hultman CM, Lehner T, Palotie A, Schellenberg GD, Sklar P, State MW, Sutcliffe JS, Walsh CA, Scherer SW, Zwick ME, Barett JC, Cutler DJ, Roeder K, Devlin B, Daly MJ, Buxbaum JD (2014) Synaptic, transcriptional and chromatin genes disrupted in autism. Nature 515:209–215. doi:10.1038/nature13772 CrossRefPubMedPubMedCentral De Rubeis S, He X, Goldberg AP, Poultney CS, Samocha K, Cicek AE, Kou Y, Liu L, Fromer M, Walker S, Singh T, Klei L, Kosmicki J, Shih-Chen F, Aleksic B, Biscaldi M, Bolton PF, Brownfeld JM, Cai J, Campbell NG, Carracedo A, Chahrour MH, Chiocchetti AG, Coon H, Crawford EL, Curran SR, Dawson G, Duketis E, Fernandez BA, Gallagher L, Geller E, Guter SJ, Hill RS, Ionita-Laza J, Jimenz Gonzalez P, Kilpinen H, Klauck SM, Kolevzon A, Lee I, Lei I, Lei J, Lehtimaki T, Lin C, Ma’ayan A, Marshall CR, McInnes AL, Neale B, Owen MJ, Ozaki N, Parellada M, Parr JR, Purcell S, Puura K, Rajagopalan D, Rehnstrom K, Reichenberg A, Sabo A, Sachse M, Sanders SJ, Schafer C, Schulte-Ruther M, Skuse D, Stevens C, Szatmari P, Tammimies K, Valladares O, Voran A, Li-San W, Weiss LA, Willsey AJ, Yu TW, Yuen RKC, Cook EH, Freitag CM, Gill M, Hultman CM, Lehner T, Palotie A, Schellenberg GD, Sklar P, State MW, Sutcliffe JS, Walsh CA, Scherer SW, Zwick ME, Barett JC, Cutler DJ, Roeder K, Devlin B, Daly MJ, Buxbaum JD (2014) Synaptic, transcriptional and chromatin genes disrupted in autism. Nature 515:209–215. doi:10.​1038/​nature13772 CrossRefPubMedPubMedCentral
go back to reference Denaxa M, Chan CH, Schachner M, Parnavelas JG, Karagogeos D (2001) The adhesion molecule TAG-1 mediates the migration of cortical interneurons from the ganglionic eminence along the corticofugal fiber system. Development 128:4635–4644PubMed Denaxa M, Chan CH, Schachner M, Parnavelas JG, Karagogeos D (2001) The adhesion molecule TAG-1 mediates the migration of cortical interneurons from the ganglionic eminence along the corticofugal fiber system. Development 128:4635–4644PubMed
go back to reference Enriquez-Barreto L, Palazzetti C, Brennaman LH, Maness PF, Fairén A (2012) Neural cell adhesion molecule, NCAM, regulates thalamocortical axon pathfinding and the organization of the cortical somatosensory representation in mouse. Front Mol Neurosci. doi:10.3389/fnmol.2012.00076 PubMedPubMedCentral Enriquez-Barreto L, Palazzetti C, Brennaman LH, Maness PF, Fairén A (2012) Neural cell adhesion molecule, NCAM, regulates thalamocortical axon pathfinding and the organization of the cortical somatosensory representation in mouse. Front Mol Neurosci. doi:10.​3389/​fnmol.​2012.​00076 PubMedPubMedCentral
go back to reference Fuller-Bicer GA, Varadi G, Koch SE, Ishii M, Bodi I, Kadeer N, Muth JN, Mikala G, Petrashevskaya NN, Jordan MA, Zhang S, Qin N, Flores CM, Isaacsohn I, Varadi M, Mori Y, Jones WK, Schwartz A (2009) Targeted disruption of the voltage-dependent calcium channel 2/-1-subunit. Am J Physiol Heart C 297:H117–124. doi:10.1152/ajpheart.00122.2009 CrossRef Fuller-Bicer GA, Varadi G, Koch SE, Ishii M, Bodi I, Kadeer N, Muth JN, Mikala G, Petrashevskaya NN, Jordan MA, Zhang S, Qin N, Flores CM, Isaacsohn I, Varadi M, Mori Y, Jones WK, Schwartz A (2009) Targeted disruption of the voltage-dependent calcium channel 2/-1-subunit. Am J Physiol Heart C 297:H117–124. doi:10.​1152/​ajpheart.​00122.​2009 CrossRef
go back to reference Iossifov I, Ronemus M, Levy D, Wang Z, Hakker I, Rosenbaum J, Yamrom B, Lee Y, Narzisi G, Leotta A, Kendall J, Grabowska E, Ma B, Marks S, Rodgers L, Stepansky A, Troge J, Andrews P, Bekritsky M, Pradhan K, Ghiban E, Kramer M, Parla J, Demeter R, Fulton LL, Fulton RS, Magrini VJ, Ye K, Darnell JC, Darnell RB, Mardis ER, Wilson RK, Schatz MC, McCombie WR, Wigler M (2012) De novo gene disruptions in children on the autistic spectrum. Neuron 74:285–299. doi:10.1016/j.neuron.2012.04.009 CrossRefPubMedPubMedCentral Iossifov I, Ronemus M, Levy D, Wang Z, Hakker I, Rosenbaum J, Yamrom B, Lee Y, Narzisi G, Leotta A, Kendall J, Grabowska E, Ma B, Marks S, Rodgers L, Stepansky A, Troge J, Andrews P, Bekritsky M, Pradhan K, Ghiban E, Kramer M, Parla J, Demeter R, Fulton LL, Fulton RS, Magrini VJ, Ye K, Darnell JC, Darnell RB, Mardis ER, Wilson RK, Schatz MC, McCombie WR, Wigler M (2012) De novo gene disruptions in children on the autistic spectrum. Neuron 74:285–299. doi:10.​1016/​j.​neuron.​2012.​04.​009 CrossRefPubMedPubMedCentral
go back to reference Iwasaki S, Momiyama A, Uchitel OD, Takahashi T (2000) Developmental changes in calcium channel types mediating central synaptic transmission. J Neurosci 20:59–65PubMed Iwasaki S, Momiyama A, Uchitel OD, Takahashi T (2000) Developmental changes in calcium channel types mediating central synaptic transmission. J Neurosci 20:59–65PubMed
go back to reference Kosik KS, Finch EA (1987) MAP2 and tau segregate into dendritic and axonal domains after the elaboration of morphologically distinct neurites: an lmmunocytochemical study of cultured rat cerebrum. J Neurosci 7:3142–3153PubMed Kosik KS, Finch EA (1987) MAP2 and tau segregate into dendritic and axonal domains after the elaboration of morphologically distinct neurites: an lmmunocytochemical study of cultured rat cerebrum. J Neurosci 7:3142–3153PubMed
go back to reference Levanen S, Hamdorf D (2001) Feeling vibrations: enhanced tactile sensitivity in congenitally deaf humans. Neurosci Lett 301:75–77CrossRefPubMed Levanen S, Hamdorf D (2001) Feeling vibrations: enhanced tactile sensitivity in congenitally deaf humans. Neurosci Lett 301:75–77CrossRefPubMed
go back to reference Meng X, Kao JPY, Lee H, Kanold PO (2017) Intracortical circuits in thalamorecipient layers of auditory cortex refine after visual deprivation. ENEURO 4 Meng X, Kao JPY, Lee H, Kanold PO (2017) Intracortical circuits in thalamorecipient layers of auditory cortex refine after visual deprivation. ENEURO 4
go back to reference Minocha S, Valloton D, Ypsilanti AR, Fiumelli H, Allen EA, Yanagawa Y, Marin O, Chedotal A, Hornung J, Lebrand C (2015) Nkx2.1-derived astrocytes and neurons together with Slit2 are indispensable for anterior commissure formation. Nat Commun 6. doi:10.1038/ncomms7887 Minocha S, Valloton D, Ypsilanti AR, Fiumelli H, Allen EA, Yanagawa Y, Marin O, Chedotal A, Hornung J, Lebrand C (2015) Nkx2.1-derived astrocytes and neurons together with Slit2 are indispensable for anterior commissure formation. Nat Commun 6. doi:10.​1038/​ncomms7887
go back to reference Miyazaki H, Oyama F, Inoue R, Aosaki T, Abe T, Kiyonari H, Kino Y, Kurosawa M, Shimizu J, Ogiwara I, Yamakawa K, Koshimizu Y, Fujiyama F, Kaneko T, Shimizu H, Nagatomo K, Yamada K, Shimogori T, Hattori N, Miura M, Nukina N (2014) Singular localization of sodium channel beta4 subunit in unmyelinated fibres and its role in the striatum. Nat Commun. doi:10.1038/ncomms6525 Miyazaki H, Oyama F, Inoue R, Aosaki T, Abe T, Kiyonari H, Kino Y, Kurosawa M, Shimizu J, Ogiwara I, Yamakawa K, Koshimizu Y, Fujiyama F, Kaneko T, Shimizu H, Nagatomo K, Yamada K, Shimogori T, Hattori N, Miura M, Nukina N (2014) Singular localization of sodium channel beta4 subunit in unmyelinated fibres and its role in the striatum. Nat Commun. doi:10.​1038/​ncomms6525
go back to reference Moons T, De Hert M, Gellens E, Gielen L, Sweers K, Jacqmaert S, van Winkel R, Vandekerckhove P, Claes S (2016) Genetic evaluation of schizophrenia using the illumina HumanExome chip. PLoS ONE. doi:10.1371/journal.pone.0150464 Moons T, De Hert M, Gellens E, Gielen L, Sweers K, Jacqmaert S, van Winkel R, Vandekerckhove P, Claes S (2016) Genetic evaluation of schizophrenia using the illumina HumanExome chip. PLoS ONE. doi:10.​1371/​journal.​pone.​0150464
go back to reference Morgan J, Cohen D, Hempstead J, Curran T (1987) Mapping patterns of c-fos expression in the central nervous system after seizure. Science 237:192–197CrossRefPubMed Morgan J, Cohen D, Hempstead J, Curran T (1987) Mapping patterns of c-fos expression in the central nervous system after seizure. Science 237:192–197CrossRefPubMed
go back to reference Neely GG, Hess A, Costigan M, Keene A, Goulas S, Langeslag M, Griffin RS, Belfer I, Dai F, Smith SB, Diatchenko L, Gupta V, Xia C, Amann S, Kreitz S, Heindl-Erdmann C, Wolz S, Ly CV, Arora S, Sarangi R, Dan D, Novatchkova M, Rosenzweig M, Gibson DG, Truong D, Schramek D, Zoranovic T, Cronin SJF, Angjeli B, Brune K, Dietzl G, Maixner W, Meixner A, Thomas W, Pospisilik JA, Alenius M, Kress M, Subramaniam S, Garrity PA, Bellen HJ, Woolf CJ, Penninger JM (2010) A genome-wide drosophila screen for heat nociception identifies α2δ3 as an evolutionarily conserved pain gene. Cell 143:628–638. doi:10.1016/j.cell.2010.09.047 CrossRefPubMedPubMedCentral Neely GG, Hess A, Costigan M, Keene A, Goulas S, Langeslag M, Griffin RS, Belfer I, Dai F, Smith SB, Diatchenko L, Gupta V, Xia C, Amann S, Kreitz S, Heindl-Erdmann C, Wolz S, Ly CV, Arora S, Sarangi R, Dan D, Novatchkova M, Rosenzweig M, Gibson DG, Truong D, Schramek D, Zoranovic T, Cronin SJF, Angjeli B, Brune K, Dietzl G, Maixner W, Meixner A, Thomas W, Pospisilik JA, Alenius M, Kress M, Subramaniam S, Garrity PA, Bellen HJ, Woolf CJ, Penninger JM (2010) A genome-wide drosophila screen for heat nociception identifies α2δ3 as an evolutionarily conserved pain gene. Cell 143:628–638. doi:10.​1016/​j.​cell.​2010.​09.​047 CrossRefPubMedPubMedCentral
go back to reference Patel R, Montagut-Bordas C, Dickenson AH (2017) Calcium channel modulation as a target in chronic pain control. Br J Pharmacol. doi:10.1111/bph.13789 Patel R, Montagut-Bordas C, Dickenson AH (2017) Calcium channel modulation as a target in chronic pain control. Br J Pharmacol. doi:10.​1111/​bph.​13789
go back to reference Paxinos G, Franklin KBJ (2001) The mouse brain in stereotaxic coordinates. Academic Press, New York Paxinos G, Franklin KBJ (2001) The mouse brain in stereotaxic coordinates. Academic Press, New York
go back to reference Pérez de Sevilla Müller L, Sargoy A, Fernandez-Sanchez L, Rodriguez A, Liu J, Cuenca N, Brecha N (2015) Expression and cellular localization of the voltage-gated calcium channel alpha2delta3 in the rodent retina. J Comp Neurol 523:1443–1460. doi:10.1002/cne.23751 CrossRef Pérez de Sevilla Müller L, Sargoy A, Fernandez-Sanchez L, Rodriguez A, Liu J, Cuenca N, Brecha N (2015) Expression and cellular localization of the voltage-gated calcium channel alpha2delta3 in the rodent retina. J Comp Neurol 523:1443–1460. doi:10.​1002/​cne.​23751 CrossRef
go back to reference Pirone A, Kurt S, Zuccotti A, Ruttiger L, Pilz P, Brown DH, Franz C, Schweizer M, Rust MB, Rubsamen R, Friauf E, Knipper M, Engel J (2014) α2δ3 is essential for normal structure and function of auditory nerve synapses and is a novel candidate for auditory processing disorders. J Neurosci 34:434–445. doi:10.1523/JNEUROSCI.3085-13.2014 CrossRefPubMed Pirone A, Kurt S, Zuccotti A, Ruttiger L, Pilz P, Brown DH, Franz C, Schweizer M, Rust MB, Rubsamen R, Friauf E, Knipper M, Engel J (2014) α2δ3 is essential for normal structure and function of auditory nerve synapses and is a novel candidate for auditory processing disorders. J Neurosci 34:434–445. doi:10.​1523/​JNEUROSCI.​3085-13.​2014 CrossRefPubMed
go back to reference Ribeiro FF, Neves-Tome R, Assaife-Lopes N, Santos TE, Silva RFM, Brites D, Ribeiro JA, Sousa MM, Sebastiao AM (2016) Axonal elongation and dendritic branching is enhanced by adenosine A2A receptors activation in cerebral cortical neurons. Brain Struct Funct 221:2777–2799. doi:10.1007/s00429-015-1072-1 CrossRefPubMed Ribeiro FF, Neves-Tome R, Assaife-Lopes N, Santos TE, Silva RFM, Brites D, Ribeiro JA, Sousa MM, Sebastiao AM (2016) Axonal elongation and dendritic branching is enhanced by adenosine A2A receptors activation in cerebral cortical neurons. Brain Struct Funct 221:2777–2799. doi:10.​1007/​s00429-015-1072-1 CrossRefPubMed
go back to reference Shinmyo Y, Asrafuzzaman RM, Ahmed G, Bin Naser I, Hossain M, Takebayashi H, Kawasaki H, Ohta K, Tanaka H (2015) Draxin from neocortical neurons controls the guidance of thalamocortical projections into the neocortex. Nat Commun 6:10232. doi:10.1038/ncomms10232 CrossRefPubMedPubMedCentral Shinmyo Y, Asrafuzzaman RM, Ahmed G, Bin Naser I, Hossain M, Takebayashi H, Kawasaki H, Ohta K, Tanaka H (2015) Draxin from neocortical neurons controls the guidance of thalamocortical projections into the neocortex. Nat Commun 6:10232. doi:10.​1038/​ncomms10232 CrossRefPubMedPubMedCentral
go back to reference Stegeman S, Jolly LA, Premarathne S, Gecz J, Richards LJ, Mackay-Sim A, Wood SA (2013) Loss of Usp9x disrupts cortical architecture, hippocampal development and TGFbeta-mediated axonogenesis. PLoS ONE. doi:10.1371/journal.pone.0068287 Stegeman S, Jolly LA, Premarathne S, Gecz J, Richards LJ, Mackay-Sim A, Wood SA (2013) Loss of Usp9x disrupts cortical architecture, hippocampal development and TGFbeta-mediated axonogenesis. PLoS ONE. doi:10.​1371/​journal.​pone.​0068287
go back to reference Vanegas H, Schaible H (2000) Effects of antagonists to high-threshold calcium channels upon spinal mechanisms of pain, hyperalgesia and allodynia. Pain 85:9–18CrossRefPubMed Vanegas H, Schaible H (2000) Effects of antagonists to high-threshold calcium channels upon spinal mechanisms of pain, hyperalgesia and allodynia. Pain 85:9–18CrossRefPubMed
go back to reference VanElzakker M, Fevurly RD, Breindel T, Spencer RL (2008) Environmental novelty is associated with a selective increase in Fos expression in the output elements of the hippocampal formation and the perirhinal cortex. Learn Memory 15:899–908. doi:10.1101/lm.1196508 CrossRef VanElzakker M, Fevurly RD, Breindel T, Spencer RL (2008) Environmental novelty is associated with a selective increase in Fos expression in the output elements of the hippocampal formation and the perirhinal cortex. Learn Memory 15:899–908. doi:10.​1101/​lm.​1196508 CrossRef
go back to reference Wolf OT, Dyakin V, Vadasz C, de Leon MJ, McEwen BS, Bulloch K (2002) Volumetric measurement of the hippocampus, the anterior cingulate cortex, and the retrosplenial granular cortex of the rat using structural MRI. Brain Res Protocol 10:41–46. doi:10.1016/S1385-299X(02)00181-2 CrossRef Wolf OT, Dyakin V, Vadasz C, de Leon MJ, McEwen BS, Bulloch K (2002) Volumetric measurement of the hippocampus, the anterior cingulate cortex, and the retrosplenial granular cortex of the rat using structural MRI. Brain Res Protocol 10:41–46. doi:10.​1016/​S1385-299X(02)00181-2 CrossRef
Metadata
Title
Neuroanatomy of pain-deficiency and cross-modal activation in calcium channel subunit (CACN) α2δ3 knockout mice
Authors
Julia Landmann
Franziska Richter
Ana-Maria Oros-Peusquens
N. Jon Shah
Joseph Classen
G. Gregory Neely
Angelika Richter
Josef M. Penninger
Ingo Bechmann
Publication date
01-01-2018
Publisher
Springer Berlin Heidelberg
Published in
Brain Structure and Function / Issue 1/2018
Print ISSN: 1863-2653
Electronic ISSN: 1863-2661
DOI
https://doi.org/10.1007/s00429-017-1473-4

Other articles of this Issue 1/2018

Brain Structure and Function 1/2018 Go to the issue