Literature DB >> 33492553

Sim1-expressing cells illuminate the origin and course of migration of the nucleus of the lateral olfactory tract in the mouse amygdala.

Elena Garcia-Calero1, Lara López-González2, Margaret Martínez-de-la-Torre2, Chen-Ming Fan3, Luis Puelles2.   

Abstract

We focus this report on the nucleus of the lateral olfactory tract (NLOT), a superficial amygdalar nucleus receiving olfactory input. Mixed with its span>n class="Gene">Tbr1-expressing layer 2 pyramidal cell population (NLOT2), there are Sim1-expressing cells whose embryonic origin and mode of arrival remain unclear. We examined this population with Sim1-ISH and a Sim1-tauLacZ mouse line. An alar hypothalamic origin is apparent at the paraventricular area, which expresses Sim1 precociously. This progenitor area shows at E10.5 a Sim1-expressing dorsal prolongation that crosses the telencephalic stalk and follows the terminal sulcus, reaching the caudomedial end of the pallial amygdala. We conceive this Sim1-expressing hypothalamo-amygdalar corridor (HyA) as an evaginated part of the hypothalamic paraventricular area, which participates in the production of Sim1-expressing cells. From E13.5 onwards, Sim1-expressing cells migrated via the HyA penetrate the posterior pallial amygdalar radial unit and associate therein to the incipient Tbr1-expressing migration stream which swings medially past the amygdalar anterior basolateral nucleus (E15.5), crosses the pallio-subpallial boundary (E16.5), and forms the NLOT2 within the anterior amygdala by E17.5. We conclude that the Tbr1-expressing NLOT2 cells arise strictly within the posterior pallial amygdalar unit, involving a variety of required gene functions we discuss. Our results are consistent with the experimental data on NLOT2 origin reported by Remedios et al. (Nat Neurosci 10:1141-1150, 2007), but we disagree on their implication in this process of the dorsal pallium, observed to be distant from the amygdala.

Entities:  

Keywords:  Hypothalamo-amygdalar corridor; Hypothalamus; Pallial amygdala; Pallium models; Paraventricular nucleus; Subpallial amygdala

Year:  2021        PMID: 33492553      PMCID: PMC7910384          DOI: 10.1007/s00429-020-02197-1

Source DB:  PubMed          Journal:  Brain Struct Funct        ISSN: 1863-2653            Impact factor:   3.270


  83 in total

1.  Emx1 and Emx2 cooperate in initial phase of archipallium development.

Authors:  Koji Shinozaki; Michio Yoshida; Miwa Nakamura; Shinichi Aizawa; Yoko Suda
Journal:  Mech Dev       Date:  2004-05       Impact factor: 1.882

2.  Efferent connections of the main olfactory bulb in the opossum (Monodelphis domestica): a characterization of the olfactory entorhinal cortex in a marsupial.

Authors:  Alino Martinez-Marcos; Mimi Halpern
Journal:  Neurosci Lett       Date:  2005-11-17       Impact factor: 3.046

3.  Multiple origins of Cajal-Retzius cells at the borders of the developing pallium.

Authors:  Franck Bielle; Amélie Griveau; Nicolas Narboux-Nême; Sébastien Vigneau; Markus Sigrist; Silvia Arber; Marion Wassef; Alessandra Pierani
Journal:  Nat Neurosci       Date:  2005-07-24       Impact factor: 24.884

Review 4.  Pallio-pallial tangential migrations and growth signaling: new scenario for cortical evolution?

Authors:  Luis Puelles
Journal:  Brain Behav Evol       Date:  2011-06-23       Impact factor: 1.808

5.  Divergence of melanocortin pathways in the control of food intake and energy expenditure.

Authors:  Nina Balthasar; Louise T Dalgaard; Charlotte E Lee; Jia Yu; Hisayuki Funahashi; Todd Williams; Manuel Ferreira; Vinsee Tang; Robert A McGovern; Christopher D Kenny; Lauryn M Christiansen; Elizabeth Edelstein; Brian Choi; Olivier Boss; Carl Aschkenasi; Chen-yu Zhang; Kathleen Mountjoy; Toshiro Kishi; Joel K Elmquist; Bradford B Lowell
Journal:  Cell       Date:  2005-11-04       Impact factor: 41.582

6.  Parallel mitral and tufted cell pathways route distinct odor information to different targets in the olfactory cortex.

Authors:  Kei M Igarashi; Nao Ieki; Myungho An; Yukie Yamaguchi; Shin Nagayama; Ko Kobayakawa; Reiko Kobayakawa; Manabu Tanifuji; Hitoshi Sakano; Wei R Chen; Kensaku Mori
Journal:  J Neurosci       Date:  2012-06-06       Impact factor: 6.167

7.  Transcriptional regulation of enhancers active in protodomains of the developing cerebral cortex.

Authors:  Kartik Pattabiraman; Olga Golonzhka; Susan Lindtner; Alex S Nord; Leila Taher; Renee Hoch; Shanni N Silberberg; Dongji Zhang; Bin Chen; HongKui Zeng; Len A Pennacchio; Luis Puelles; Axel Visel; John L R Rubenstein
Journal:  Neuron       Date:  2014-05-08       Impact factor: 17.173

8.  Convergence of olfactory and vomeronasal projections in the rat basal telencephalon.

Authors:  Palma Pro-Sistiaga; Alicia Mohedano-Moriano; Isabel Ubeda-Bañon; Maria Del Mar Arroyo-Jimenez; Pilar Marcos; Emilio Artacho-Pérula; Carlos Crespo; Ricardo Insausti; Alino Martinez-Marcos
Journal:  J Comp Neurol       Date:  2007-10-01       Impact factor: 3.215

9.  Selective early expression of the orphan nuclear receptor Nr4a2 identifies the claustrum homolog in the avian mesopallium: Impact on sauropsidian/mammalian pallium comparisons.

Authors:  L Puelles; A Ayad; A Alonso; J E Sandoval; M MartÍnez-de-la-Torre; L Medina; J L Ferran
Journal:  J Comp Neurol       Date:  2015-12-04       Impact factor: 3.215

10.  Topography of Somatostatin Gene Expression Relative to Molecular Progenitor Domains during Ontogeny of the Mouse Hypothalamus.

Authors:  Nicanor Morales-Delgado; Paloma Merchan; Sylvia M Bardet; José L Ferrán; Luis Puelles; Carmen Díaz
Journal:  Front Neuroanat       Date:  2011-02-28       Impact factor: 3.856

View more
  6 in total

1.  Prosomeric Hypothalamic Distribution of Tyrosine Hydroxylase Positive Cells in Adolescent Rats.

Authors:  María G Bilbao; Daniel Garrigos; Marta Martinez-Morga; Angel Toval; Yevheniy Kutsenko; Rosario Bautista; Alberto Barreda; Bruno Ribeiro Do-Couto; Luis Puelles; José Luis Ferran
Journal:  Front Neuroanat       Date:  2022-05-06       Impact factor: 3.543

2.  Developmental-Based Classification of Enkephalin and Somatostatin Containing Neurons of the Chicken Central Extended Amygdala.

Authors:  Alessandra Pross; Alek H Metwalli; Ester Desfilis; Loreta Medina
Journal:  Front Physiol       Date:  2022-05-25       Impact factor: 4.755

3.  Distinct Subdivisions in the Transition Between Telencephalon and Hypothalamus Produce Otp and Sim1 Cells for the Extended Amygdala in Sauropsids.

Authors:  Alek H Metwalli; Antonio Abellán; Júlia Freixes; Alessandra Pross; Ester Desfilis; Loreta Medina
Journal:  Front Neuroanat       Date:  2022-05-12       Impact factor: 3.543

Review 4.  Recollections on the Origins and Development of the Prosomeric Model.

Authors:  Luis Puelles
Journal:  Front Neuroanat       Date:  2021-12-24       Impact factor: 3.856

5.  Developmental genoarchitectonics as a key tool to interpret the mature anatomy of the chondrichthyan hypothalamus according to the prosomeric model.

Authors:  Gabriel N Santos-Durán; Susana Ferreiro-Galve; Sylvie Mazan; Ramón Anadón; Isabel Rodríguez-Moldes; Eva Candal
Journal:  Front Neuroanat       Date:  2022-08-04       Impact factor: 3.543

Review 6.  Novel Perspectives on the Development of the Amygdala in Rodents.

Authors:  Tania Aerts; Eve Seuntjens
Journal:  Front Neuroanat       Date:  2021-12-09       Impact factor: 3.856

  6 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.