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Comparative anatomical distribution of neuronal calcium-binding protein (NECAB) 1 and -2 in rodent and human spinal cord

Overview of attention for article published in Brain Structure and Function, February 2016
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Title
Comparative anatomical distribution of neuronal calcium-binding protein (NECAB) 1 and -2 in rodent and human spinal cord
Published in
Brain Structure and Function, February 2016
DOI 10.1007/s00429-016-1191-3
Pubmed ID
Authors

Ming-Dong Zhang, Swapnali Barde, Edit Szodorai, Anna Josephson, Nicholas Mitsios, Masahiko Watanabe, Johannes Attems, Gert Lubec, Gábor G. Kovács, Mathias Uhlén, Jan Mulder, Tibor Harkany, Tomas Hökfelt

Abstract

Neuronal calcium-binding protein 1 and -2 (NECAB1/2) localize to multiple excitatory neuron populations in the mouse spinal cord. Here, we analyzed rat and human spinal cord, combining in situ hybridization and immunohistochemistry, complementing newly collated data on mouse spinal cord for direct comparisons. Necab1/2 mRNA transcripts showed complementary distribution in rodent's spinal cord. Multiple-labeling fluorescence histochemistry with neuronal phenotypic markers localized NECAB1 to a dense fiber plexus in the dorsal horn, to neurons mainly in superficial layers and to commissural interneurons in both rodent species. NECAB1-positive (+) motor neurons were only found in mice. NECAB1 distribution in the human spinal cord was similar with the addition of NECAB1-like immunoreactivity surrounding myelinated axons. NECAB2 was mainly present in excitatory synaptic boutons in the dorsal horn of all three species, and often in calbindin-D28k(+) neuronal somata. Rodent ependymal cells expressed calbindin-D28k. In humans, they instead were NECAB2(+) and/or calretinin(+). Our results reveal that the association of NECAB2 to excitatory neuronal circuits in the spinal cord is evolutionarily conserved across the mammalian species investigated so far. In contrast, NECAB1 expression is more heterogeneous. Thus, our study suggests that the phenotypic segregation of NECAB1 and -2 to respective excitatory and inhibitory spinal systems can underpin functional modalities in determining the fidelity of synaptic neurotransmission and neuronal responsiveness, and might bear translational relevance to humans.

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Geographical breakdown

Country Count As %
Unknown 22 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 4 18%
Student > Doctoral Student 3 14%
Researcher 3 14%
Student > Postgraduate 2 9%
Student > Bachelor 2 9%
Other 2 9%
Unknown 6 27%
Readers by discipline Count As %
Neuroscience 6 27%
Medicine and Dentistry 4 18%
Nursing and Health Professions 2 9%
Psychology 1 5%
Biochemistry, Genetics and Molecular Biology 1 5%
Other 1 5%
Unknown 7 32%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 1. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 05 February 2016.
All research outputs
#21,697,638
of 24,217,893 outputs
Outputs from Brain Structure and Function
#1,524
of 1,725 outputs
Outputs of similar age
#345,581
of 405,418 outputs
Outputs of similar age from Brain Structure and Function
#26
of 33 outputs
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