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huSCN2A Mouse
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huSCN2A Mouse
製品名
huSCN2A Mouse
製品ID
C002060
系統名
C57BL/6NCya-Scn2atm1(hSCN2A)/Cya
背景情報
C57BL/6NCya
状況
このマウス系統を論文で使用する場合は、「huSCN2A Mouse(カタログ番号C002060)はサイアジェンから購入しました。」と引用してください。
HUGO-GT Humanized Models
製品タイプ
年齢
遺伝子型
性別
数量
標準的な配送方法では、少なくとも3匹のヘテロ接合体キャリアを保証しています。ホモ接合体キャリアや指定された性別の個体の繁殖サービスも利用可能です。
お見積もりについてはこちらまでご連絡ください
HUGO-GT Humanized Models
基本情報
検証 Data
関連リソース
基本情報
遺伝子名
遺伝子別名
EA9, HBA, NAC2, BFIC3, BFIS3, BFNIS, DEE11, HBSCI, EIEE11, HBSCII, Nav1.2, SCN2A1, SCN2A2, Na(v)1.2
NCBI ID
染色体
Chr 2
MGI ID
さらに
系統詳細
Epilepsy, a chronic neurological disorder, is diagnosed in an estimated 5 million individuals globally each year. An epileptic seizure may result in brief involuntary convulsions, occasionally accompanied by loss of consciousness and urinary incontinence. Patients with epilepsy often face additional physical complications and psychological disorders. The risk of premature death for patients with epilepsy can be tripled, with the highest rates observed in low- and middle-income countries and rural areas [1]. The etiology of epilepsy is multifactorial, encompassing structural, genetic, infectious, metabolic, and immune factors. With the advent of genetic testing in pediatric neurology, a genetic cause is believed to underlie more than half of pediatric epilepsy cases. Voltage-gated sodium ion channel genes, including SCN1A, SCN2A, SCN3A, and SCN8A, are implicated in epilepsy. Single nucleotide variations (SNVs) can result in either loss or gain of function of the affected ion channels, such as in the case of epileptic encephalopathies (DEEs) associated with SCN2A [2-4]。
The SCN2A gene, encoding the α2 subunit of the voltage-gated sodium channel (Nav1.2), is a significant contributor to epilepsy. Mutations in SCN2A are associated with various neurological disorders and are inherited in an autosomal dominant manner. Current epilepsy treatments primarily aim to reduce seizure likelihood rather than address the underlying disease process. Sodium channel blockers (SCBs) may effectively treat epilepsy caused by SCN2A mutations. The discovery of more epilepsy gene pathogenic factors enhances our understanding of the epileptogenic process and opens the possibility for targeted gene therapy [5]. The ASO drug elsunersen (PRAX-222), developed by Praxis Precision Medicines, has received Priority Medicines (PRIME) certification from the European Medicines Agency (EMA) for treating SCN2A gain-of-function (GoF) developmental epileptic encephalopathy (DEE) [6-9]. Considering the genetic differences between animals and humans, humanizing mouse genes can expedite the clinical stages of these treatments. This strain is a humanized model of the mouse Scn2a gene, useful for epilepsy research. The homozygous huSCN2A mice are viable and fertile. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology, Cyagen can also generate hot mutation models based on this strain and provide customized services for specific mutations to meet the experimental needs in pharmacology and other fields.
参考文献
World Health Organization. (2023, February 9). Epilepsy. [Fact sheet].
https://www.who.int/news-room/fact-sheets/detail/epilepsy
https://www.who.int/news-room/fact-sheets/detail/epilepsy
Alsubaie L, Aloraini T, Amoudi M, Swaid A, Eyiad W, Al Mutairi F, Ababneh F, Alrifai MT, Baarmah D, Altwaijri W, Alotaibi N, Harthi A, Rumayyan A, Alanazi A, Qrimli M, Alfadhel M, Alfares A. Genomic testing and counseling: The contribution of next-generation sequencing to epilepsy genetics. Ann Hum Genet. 2020 Nov;84(6):431-436.
Beltrán-Corbellini Á, Aledo-Serrano Á, Møller RS, Pérez-Palma E, García-Morales I, Toledano R, Gil-Nagel A. Epilepsy Genetics and Precision Medicine in Adults: A New Landscape for Developmental and Epileptic Encephalopathies. Front Neurol. 2022 Feb 17;13:777115.
Zeng Q, Yang Y, Duan J, Niu X, Chen Y, Wang D, Zhang J, Chen J, Yang X, Li J, Yang Z, Jiang Y, Liao J, Zhang Y. SCN2A-Related Epilepsy: The Phenotypic Spectrum, Treatment and Prognosis. Front Mol Neurosci. 2022 Mar 30;15:809951.
Howell KB, McMahon JM, Carvill GL, Tambunan D, Mackay MT, Rodriguez-Casero V, Webster R, Clark D, Freeman JL, Calvert S, Olson HE, Mandelstam S, Poduri A, Mefford HC, Harvey AS, Scheffer IE. SCN2A encephalopathy: A major cause of epilepsy of infancy with migrating focal seizures. Neurology. 2015 Sep 15;85(11):958-66.
Thompson CH, Ben-Shalom R, Bender KJ, George AL. Alternative splicing potentiates dysfunction of early-onset epileptic encephalopathy SCN2A variants. J Gen Physiol. 2020 Mar 2;152(3):e201912442.
Sharkov A, Sparber P, Stepanova A, Pyankov D, Korostelev S, Skoblov M. Case Report: Phenotype-Driven Diagnosis of Atypical Dravet-Like Syndrome Caused by a Novel Splicing Variant in the SCN2A Gene. Front Genet. 2022 May 31;13:888481.
Praxis Precision Medicines. (2022, November 28). Praxis Precision Medicines to Advance PRAX-562 Phase 2 Study in Pediatric Patients with Developmental and Epileptic Encephalopathies. [Press release].
https://investors.praxismedicines.com/news-releases/news-release-details/praxis-precision-medicines-to-advance-prax-562-phase-2-study
https://investors.praxismedicines.com/news-releases/news-release-details/praxis-precision-medicines-to-advance-prax-562-phase-2-study
Praxis Precision Medicines. (2023, November 16). Praxis Precision Medicines Receives PRIME Designation from the EMA for Elsunersen for the Treatment of SCN2A-DEE. [Press release]. https://investors.praxismedicines.com/news-releases/news-release-details/praxis-precision-medicines-receives-prime-designation-ema
系統作製戦略
The sequence from the start codon to the stop codon of mouse Scn2a was replaced with the sequence from the start codon to the stop codon of human SCN2A.

Figure 1. Gene editing strategy of huSCN2A mice.
適用分野
Research on epilepsy;
Research on neurodevelopment;
Preclinical evaluation of SCN2A-targeted drugs.
検証 Data
1. Gene Expression
RT-qPCR results demonstrated that human SCN2A (hSCN2A) transcripts were detected in multiple tissues of homozygous huSCN2A mice, while murine Scn2a (mScn2a) transcripts were Not Detected. In contrast, mScn2a transcripts were identified in various tissues of WT mice, whereas hSCN2A transcripts were absent. Data are presented as mean ± standard error (mean ± SEM).

Figure 2. Gene Expression Analysis in Lung, Brainstem, Cerebellum, Hippocampus and Cerebral Cortex Tissues of huSCN2A Mice and Wild-Type (WT) Mice (6 weeks old, homozygous, n=3).
2. Protein Expression
Due to the cross-reactivity of this antibody with both human and murine Nav1.2 proteins, Nav1.2 expression signals were detected in the hippocampus and cerebral cortex tissues of both huSCN2A and wild-type (WT) mice.

Figure 3. Nav1.2 protein expression in the hippocampus and cerebral cortex of huSCN2A and wild-type (WT) mice (6 weeks old, both sexes, homozygous, n=3).
3. Behavioral Testing: Open Field Test
(1)3.5-month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences, **p < 0.01, ****p < 0.0001.

Figure 4. The distance traveled and central time for WT and huSCN2A mice in open field test.
(2)4 month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences.

Figure 5. The distance traveled and central time for WT and huSCN2A mice in open field test.
Indications:
At 3.5 and 4 months of age, huSCN2A mice showed no significant differences in travel distance compared to WT controls. However, at 3.5 months, huSCN2A mice exhibited a significant increase in time spent in the center, indicative of reduced anxiety-like behavior.
(3)5-month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences, *p < 0.05.

Figure 6. The distance traveled and central time for WT and huSCN2A mice in open field test.
(4)5.5-month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences, *p < 0.05, **p < 0.01.

Figure 7. The distance traveled and central time for WT and huSCN2A mice in open field test.
Indications:
At 5 and 5.5 months of age, huSCN2A mice showed no significant differences in travel distance compared to WT controls; however, they exhibited a significant increase in time spent in the center, indicative of reduced anxiety-like behavior.
(5)7.5-month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences, *p < 0.05, **p < 0.01.

Figure 8. The distance traveled and central time for WT and huSCN2A mice in open field test.
(6)8-month-old
Data were analyzed using the unpaired t-test; "ns" indicates no significant differences, *p < 0.05, **p < 0.01.

Figure 9. The distance traveled and central time for WT and huSCN2A mice in open field test.
Indications:
At 7.5 and 8 months of age, huSCN2A mice showed no significant differences in travel distance compared to WT controls; however, they exhibited a significant increase in time spent in the center of the open field, indicative of reduced anxiety-like behavior.
関連リソース
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