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B6-hSMN2 (SMA) Mouse
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B6-hSMN2 (SMA) Mouse
제품명
B6-hSMN2 (SMA) Mouse
제품 ID
C001504
품종 계통
C57BL/6NCya-Smn1tm1(hSMN2)/Cya
Backgroud
C57BL/6NCya
Reproduction
Heterozygote x Heterozygote
Note
One of Cyagen's HUGO-GTTM (Humanized Genomic Ortholog for Gene Therapy) Mouse Strains
상태
이 마우스 계통을 논문에서 사용할 경우, “B6-hSMN2 (SMA) Mouse (카탈로그 번호 C001504)은 Cyagen에서 구입하였습니다.”라고 명시해 주시기 바랍니다.
HUGO-GT Humanized Models
Disease Animal Models
Neurodegenerative Diseases
Small Nucleic Acids
구매 가능한 제품 종류
연령
Genotype
성별
수량
표준 제공 조건은 최소 3마리의 이형접합(heterozygous) 보균자를 보장합니다. 동형접합(homozygous) 보균자 및/또는 특정 성별에 대한 브리딩 서비스도 제공됩니다.
가격 문의
HUGO-GT Humanized Models
Disease Animal Models
Neurodegenerative Diseases
Small Nucleic Acids
기본 정보
검증 데이터
관련 자료
기본 정보
유전자명
유전자 별칭
SMNC, BCD541, GEMIN1, TDRD16B, C-BCD541
NCBI ID
염색체
Chr 5
MGI ID
Datasheet
품종 계통 설명
Spinal muscular atrophy (SMA) is an autosomal recessive neurodegenerative disease characterized by the progressive loss of anterior horn motor neurons in the spinal cord, leading to muscle weakness and atrophy. This can affect the muscles that control breathing, crawling, walking, head and neck control, and swallowing, increasing the risk of pneumonia and respiratory infections in patients. SMA is the most common fatal neurogenetic disease in infancy, with an incidence rate of 1/6,000 to 1/10,000.
SMA is caused by mutations in the SMN1 gene, which encodes a protein essential for motor neuron survival. The human genome also contains the SMN2 gene, which is highly homologous to SMN1 but differs in splicing patterns. A c.840C>T mutation in the splicing enhancer of exon 7 of SMN2 causes it to produce mostly truncated mRNA, which encodes a non-functional protein. Only a small portion of SMN2 mRNA, approximately 10%~15%, is spliced into full-length mRNA, which encodes functional protein [1]. Approximately 95% of SMA patients carry either the homozygous SMN1 exon 7 deletion mutation or the homozygous mutation that converts SMN1 to SMN2, and the inability of SMN2 expression to compensate for the deletion of SMN proteins leads to disease [2]. Mice are the most common preclinical experimental subjects for SMA, but they only have the Smn1 gene, and the deletion of both Smn1 alleles leads to lethality. Therefore, it is crucial to develop mouse models that can simulate human SMA pathogenesis and progression. Current therapies for SMA aim to supplement SMN1 genes or selectively regulate SMN2 splicing. Targeted therapy for SMN2 changes its splicing pattern to increase the expression of full-length SMN protein [3]. The application of fully humanized animal models can help promote the further translation of potential SMA-related therapies into clinical trials.
This strain is a humanized SMN2 gene model of spinal muscular atrophy (SMA). The endogenous Smn1 gene in mice was replaced with the human SMN2 gene fragment to simulate the pathogenesis of SMA patients in mice. However, since the SMN2 gene mainly produces the SMNΔ7 protein, which lacks exon 7, the humanized SMN2 gene cannot fully compensate for the abnormalities caused by the loss of the Smn1 gene, resulting in an SMA-like phenotype in the model. Due to the correlation between SMA subtypes and SMN2 copy numbers, this model can be mated with Rosa26-hSMN2 mice, which have SMN2 genes inserted in chromosome 6, to increase the copy number of SMN2 in mice and improve the survival period of the model. This can simulate different SMA subtypes, which can be used for more relevant pathogenic mechanisms and preclinical studies of drugs.
Reference
Wirth B, Karakaya M, Kye M J, et al. Twenty-Five Years of Spinal Muscular Atrophy Research: From Phenotype to Genotype to Therapy, and What Comes Next[J]. Annual Review of Genomics and Human Genetics, 2020(1).
Wirth B. An update of the mutation spectrum of the survival motor neuron gene (SMN1) in autosomal recessive spinal muscular atrophy (SMA)[J]. Hum Mutat. 2000;15(3).
Hill SF, Meisler MH. Antisense Oligonucleotide Therapy for Neurodevelopmental Disorders[J].Dev Neurosci. 2021;43(3-4).
Mendell JR, Al-Zaidy S, Shell R, et al. Single-Dose Gene-Replacement Therapy for Spinal Muscular Atrophy[J].N Engl J Med. 2017 Nov 2;377(18):1713-1722.
변형 전략
Using embryonic stem cell (ES) gene editing technology, the fragment from the upstream to the downstream of the mouse Smn1 gene was replaced with the fragment from the upstream to the downstream of the human SMN2 gene, and the replaced fragment covered the promoter, 5'UTR, and 3'UTR regions of the SMN2 gene.

Figure 1. Gene editing strategy for B6-hSMN2 (SMA) mice.
응용 분야
Pathogenic mechanism of Spinal Muscular Atrophy (SMA) and the preclinical evaluation of therapeutic drugs.
검증 데이터
1. Gene expression
The expression of the human SMN2 gene and mouse Smn1 gene, as well as the proportion of SMN2 transcripts containing exon 7 (E7+), were examined by RT-qPCR. The results showed that compared with the wild-type, the expression of the human SMN2 gene was present in the brain, liver, heart, and skeletal muscle of B6-hSMN2 (SMA) mice, while the expression of the mouse Smn1 gene was absent. In B6-hSMN2 (SMA) mice, transcripts containing exon 7 (E7+) accounted for only a very small portion of total human SMN2 transcripts (E7+&E7-).

Figure 2. Detection of human SMN2 and mouse Smn1 gene expression in the brain, liver, heart, and skeletal muscle of 3-week-old female wild-type mice (WT) and homozygous B6-hSMN2 (SMA) mice (hSMN2) (n=3).
E7+&E7-: Total human SMN2 transcripts; E7-: Human SMN2 transcripts lacking exon 7; E7+: Human SMN2 transcripts containing exon 7; ND: Not detected.
2. SMN Protein Expression
The expression of the SMN protein was detected by Western Blot. The results showed that the expression of SMN protein in the spinal cord, heart, skeletal muscle, brain, liver, and kidney of homozygous hSMN2 mice was severely down-regulated, indicating that only a restricted amount of SMN protein encoded by the SMN2 gene existed in homozygous B6-hSMN2 (SMA) mice.

Figure 3. Expression of SMN protein in the spinal cord, heart, skeletal muscle, brain, liver, and kidney of 3-week-old female wild-type mice (WT) and homozygous B6-hSMN2 (SMA) mice (hSMN2/hSMN2).
3. Survival curves of B6-hSMN2 (SMA) mice
The results indicate that homozygous B6-hSMN2 (SMA) mice begin to experience mortality around 13 days, reaching a 50% mortality rate at approximately 20 days, and nearly all mice have died before 40 days. In contrast, heterozygous hSMN2 mice exhibit similar survival patterns to wild-type mice, with no apparent survival abnormalities, consistent with the autosomal recessive inheritance characteristic of SMA.

Figure 4. B6-hSMN2 (SMA) mice exhibit a rapid decline in survival compared to wild-type mice.
4. Physical appearance status of B6-hSMN2 (SMA) mice
Homozygous B6-hSMN2 (SMA) mice (hSMN2/hSMN2) exhibit severe muscle atrophy, ataxia, dwarfism, shortened body length, taillessness, and edema of the limbs, while Heterozygous B6-hSMN2 (SMA) mice (hSMN2/+) appear normal.

Figure 5. Physical appearance of 3-week-old homozygous and heterozygous B6-hSMN2 (SMA) mice.
5. Histological pathology
(1)Histopathology of muscle in B6-hSMN2 (SMA) mice
Homozygous B6-hSMN2 (SMA) mice have focal areas of muscle cell necrosis, characterized by cytoplasmic disruption and infiltration of a small number of lymphocytes (blue arrows). Surrounding muscle cells show atrophy, with decreased cell size and increased intermuscular space (brown arrows). In contrast, muscle tissue from wild-type mice shows no evidence of muscle cell necrosis or atrophy.

Figure 6. H&E staining of muscle tissue from 3-week-old female homozygous B6-hSMN2 (SMA) mice (hSMN2/hSMN2) and wild-type mice (WT).
(2)Histopathology of paws in B6-hSMN2 (SMA) mice
In B6-hSMN2 (SMA) mice (hSMN2), the joint structures of the toes are clear, with occasional infiltration of free granulocytes around them (black arrows). Local necrosis and dissolution of muscle fibers can be seen around the paw, with the structure disappearing and being largely replaced by proliferating connective tissue (green arrows), accompanied by a large amount of granulocyte infiltration (black arrows), and occasional fractures of the metacarpal bones (red arrows). Subcutaneous edema is common, with loose connective tissue, widened gaps, and a small amount of granulocyte infiltration (orange arrows).

Figure 7. H&E staining of paw tissue from 3-week-old female homozygous B6-hSMN2 (SMA) mice and wild-type mice (WT).
(3)Histopathology of tails in B6-hSMN2 (SMA) mice
The epidermis and dermis of the tail tissue of B6-hSMN2 (SMA) mice showed no obvious abnormalities, with local subcutaneous edema and loose connective tissue arrangement, occasional blood vessel dilation, and a small amount of lymphocyte infiltration (blue arrow). Compared with the control group, muscle cell atrophy and reduced volume were more common in the muscle layer (yellow arrow); the center of the tissue was the tail vertebrae, with no obvious abnormalities.

Figure 8. H&E staining of tail tissue from 3-week-old female homozygous B6-hSMN2 (SMA) mice and wild-type mice (WT).
6. SMN2-targeted antisense oligonucleotides (ASO) increase the expression of SMN proteins.
Antisense oligonucleotides (ASO-10-27, synthesized by GenScript), structurally and functionally similar to Spinraza*, an FDA-approved SMA drug, were administered to B6-hSMN2 (SMA) mice in different doses via intracerebroventricular (icv) and subcutaneous (s.c.) injections. Data show that icv-injected ASO can increase the expression of SMN protein in the brain (a) and the number of anterior horn motor neurons in the spinal cord (b) of B6-hSMN2 (SMA) mice.

Figure 9. Treatment of homozygous B6-hSMN2 (SMA) mice (hSMN2/hSMN2) with ASO modulating SMN2 splicing pattern.
**Spinraza is the first approved drug for the treatment of SMA. It modifies the splicing pattern of SMN2 Pre-mRNA through antisense oligonucleotides (ASO), leading to the production of a large amount of normal SMN2 mRNA containing exon 7, which encodes functional SMN protein [4].
7. SMN2-targeted ASO alleviates the disease phenotype and improves the survival rate.
Following treatment with ASO-10-27, the survival rate of homozygous B6-hSMN2 (SMA) mice significantly improved, with all ASO-treated mice beginning to die only at 140 days of age. In contrast, the median survival period for B6-hSMN2 (SMA) mice not treated with ASO-10-27 was only 29 days, with toe necrosis and tail loss appearing at 35 days of age, and all mice dying around 40 days of age. However, B6-hSMN2 (SMA) mice treated with ASO only showed slight toe swelling at 43 days of age, with intact tails and no toe necrosis. By 78 days of age, only a few mice showed a tail loss, with no toe necrosis. At 85 days of age, although some mice lost their tails, their toes remained healthy. It was not until 120 days of age that some mice began to show signs of paw necrosis. These results indicate that ASO-10-27 treatment can significantly improve the survival and health status of B6-hSMN2 (SMA) mice.

Figure 10. ASO-10-27 enhances the survival rate of homozygous B6-hSMN2 (SMA) mice and delays tissue lesions.
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