Literature DB >> 30326149

Distribution and development of molecularly distinct perineuronal nets in visual thalamus.

Ubadah Sabbagh1,2, Aboozar Monavarfeshani1,3, Kaiwen Su1, Masoud Zabet-Moghadam4, James Cole1,5, Eric Carnival1, Jianmin Su1, Mehdi Mirzaei6,7,8, Vivek Gupta8, Ghasem Hosseini Salekdeh6,9, Michael A Fox1,3,10.   

Abstract

Visual information is detected by the retina and transmitted into the brain by retinal ganglion cells. In rodents, the visual thalamus is a major recipient of retinal ganglion cells axons and is divided into three functionally distinct nuclei: the dorsal lateral geniculate nucleus (dLGN), ventral LGN (vLGN), and intergeniculate leaflet. Despite being densely innervated by retinal input, each nucleus in rodent visual thalamus possesses diverse molecular profiles which underpin their unique circuitry and cytoarchitecture. Here, we combined large-scale unbiased proteomic and transcriptomic analyses to elucidate the molecular expression profiles of the developing mouse dLGN and vLGN. We identified several extracellular matrix proteins as differentially expressed in these regions, particularly constituent molecules of perineuronal nets (PNNs). Remarkably, we discovered at least two types of molecularly distinct Aggrecan-rich PNN populations in vLGN, exhibiting non-overlapping spatial, temporal, and cell-type specific expression patterns. The mechanisms responsible for the formation of these two populations of PNNs also differ as the formation of Cat315+ PNNs (but not WFA+ PNNs) required input from the retina. This study is first to suggest that cell type- and molecularly specific supramolecular assemblies of extracellular matrix may play important roles in the circuitry associated with the subcortical visual system and in the processing of visual information. OPEN SCIENCE BADGES: This article has received a badge for *Open Materials* because it provided all relevant information to reproduce the study in the manuscript. The complete Open Science Disclosure form for this article can be found at the end of the article. More information about the Open Practices badges can be found at https://cos.io/our-services/open-science-badges/. Cover Image for this issue: doi: 10.1111/jnc.14203.
© 2018 International Society for Neurochemistry.

Entities:  

Keywords:  zzm321990LGNzzm321990; aggrecan; perineuronal net; retinogeniculate; thalamus; visual

Mesh:

Substances:

Year:  2018        PMID: 30326149      PMCID: PMC6532419          DOI: 10.1111/jnc.14614

Source DB:  PubMed          Journal:  J Neurochem        ISSN: 0022-3042            Impact factor:   5.372


  85 in total

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Journal:  J Neurochem       Date:  2006-04-21       Impact factor: 5.372

2.  Membrane proteins ride shotgun.

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3.  Comparison of extraction methods for the comprehensive analysis of mouse brain proteome using shotgun-based mass spectrometry.

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4.  Distinct target-derived signals organize formation, maturation, and maintenance of motor nerve terminals.

Authors:  Michael A Fox; Joshua R Sanes; Dorin-Bogdan Borza; Veraragavan P Eswarakumar; Reinhard Fässler; Billy G Hudson; Simon W M John; Yoshifumi Ninomiya; Vadim Pedchenko; Samuel L Pfaff; Michelle N Rheault; Yoshikazu Sado; Yoav Segal; Michael J Werle; Hisashi Umemori
Journal:  Cell       Date:  2007-04-06       Impact factor: 41.582

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Review 6.  Casting a Wide Net: Role of Perineuronal Nets in Neural Plasticity.

Authors:  Barbara A Sorg; Sabina Berretta; Jordan M Blacktop; James W Fawcett; Hiroshi Kitagawa; Jessica C F Kwok; Marta Miquel
Journal:  J Neurosci       Date:  2016-11-09       Impact factor: 6.167

Review 7.  Neuroproteomics Studies: Challenges and Updates.

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Journal:  Methods Mol Biol       Date:  2017

8.  Cell-specific and developmental expression of lectican-cleaving proteases in mouse hippocampus and neocortex.

Authors:  C Levy; J M Brooks; J Chen; J Su; M A Fox
Journal:  J Comp Neurol       Date:  2014-11-21       Impact factor: 3.215

9.  Structural and functional composition of the developing retinogeniculate pathway in the mouse.

Authors:  Lisa Jaubert-Miazza; Erick Green; Fu-Sun Lo; Kim Bui; Jeremy Mills; William Guido
Journal:  Vis Neurosci       Date:  2005 Sep-Oct       Impact factor: 3.241

10.  Diverse Central Projection Patterns of Retinal Ganglion Cells.

Authors:  Emily M Martersteck; Karla E Hirokawa; Mariah Evarts; Amy Bernard; Xin Duan; Yang Li; Lydia Ng; Seung W Oh; Benjamin Ouellette; Joshua J Royall; Michelle Stoecklin; Quanxin Wang; Hongkui Zeng; Joshua R Sanes; Julie A Harris
Journal:  Cell Rep       Date:  2017-02-21       Impact factor: 9.423

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1.  Visual Information Processing in the Ventral Division of the Mouse Lateral Geniculate Nucleus of the Thalamus.

Authors:  Ulas M Ciftcioglu; Vandana Suresh; Kimberly R Ding; Friedrich T Sommer; Judith A Hirsch
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2.  LacZ-reporter mapping of Dlx5/6 expression and genoarchitectural analysis of the postnatal mouse prethalamus.

Authors:  Luis Puelles; Carmen Diaz; Thorsten Stühmer; José L Ferran; Margaret Martínez-de la Torre; John L R Rubenstein
Journal:  J Comp Neurol       Date:  2020-06-18       Impact factor: 3.215

3.  Diverse GABAergic neurons organize into subtype-specific sublaminae in the ventral lateral geniculate nucleus.

Authors:  Ubadah Sabbagh; Gubbi Govindaiah; Rachana D Somaiya; Ryan V Ha; Jessica C Wei; William Guido; Michael A Fox
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4.  Aging Alters Daily and Regional Calretinin Neuronal Expression in the Rat Non-image Forming Visual Thalamus.

Authors:  Felipe P Fiuza; José Pablo G Queiroz; Antônio Carlos Q Aquino; Diego A Câmara; Luiz Eduardo M Brandão; Ramon H Lima; José Rodolfo L P Cavalcanti; Rovena Clara G J Engelberth; Jeferson S Cavalcante
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Review 5.  Mechanisms of Plasticity in Subcortical Visual Areas.

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6.  Guidance landscapes unveiled by quantitative proteomics to control reinnervation in adult visual system.

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7.  Retinal inputs signal astrocytes to recruit interneurons into visual thalamus.

Authors:  Jianmin Su; Naomi E Charalambakis; Ubadah Sabbagh; Rachana D Somaiya; Aboozar Monavarfeshani; William Guido; Michael A Fox
Journal:  Proc Natl Acad Sci U S A       Date:  2020-01-21       Impact factor: 11.205

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