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B6-hDMD (E49-53) Mouse
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B6-hDMD (E49-53) Mouse
製品名
B6-hDMD (E49-53) Mouse
製品ID
C001775
系統名
C57BL/6NCya-Dmdtm3(hDMD Exon 49-53)/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、「B6-hDMD (E49-53) Mouse(カタログ番号C001775)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
BMD, CMD3B, MRX85, DXS142, DXS164, DXS206, DXS230, DXS239, DXS268, DXS269, DXS270, DXS272
NCBI ID
染色体
Chr X
MGI ID
さらに
系統詳細
Duchenne Muscular Dystrophy (DMD) is a severe, progressive, and disabling X-linked recessive genetic disorder characterized primarily by muscle atrophy. This disease leads to motor impairments, eventually requiring assisted ventilation, and often results in premature death. The primary cause of DMD is mutations in the DMD gene, which encodes the dystrophin protein. These mutations lead to a reduction or absence of dystrophin in muscle tissue, resulting in muscle atrophy and related complications [1]. The lack of dystrophin leads to the breakdown of the dystrophin-associated protein complex (DAPC) within the muscle membrane, disrupting the interaction between actin and the extracellular matrix, making the muscles more susceptible to damage. This susceptibility results in the gradual loss of muscle tissue and function, potentially leading to cardiomyopathy [2]. Researchers have identified thousands of different DMD gene mutations in patients with DMD. Deletion mutations account for approximately 60%–70%, while duplication mutations account for 5%–15%. These mutations are primarily concentrated in hotspot regions of the DMD gene, specifically between exons 45-55 (47%) and exons 3-9 (7%) [1].
Currently, gene therapy approaches for Duchenne Muscular Dystrophy (DMD) primarily include exon skipping and AAV supplementation, as well as emerging gene editing techniques like CRISPR. The exon skipping strategy involves using antisense oligonucleotide (ASO) drugs to bind to specific sequences of pre-mRNA, skipping the mutated exon and restoring the open reading frame (ORF) integrity, thus producing a truncated but partially functional dystrophin protein. Several ASO drugs targeting the DMD gene have been approved, such as Eteplirsen (targeting exon 51), Golodirsen (targeting exon 53), and Casimersen (targeting exon 45) developed by Sarepta, and Viltolarsen (targeting exon 53) developed by Nippon Shinyaku. Since most ASO and CRISPR-based gene editing therapies target the human DMD gene, humanizing mouse genes helps accelerate clinical applications for DMD therapies, considering the genetic differences between animals and humans.
The B6-hDMD (E49-53) mouse is a humanized model of exons 49-53 of the Dmd gene, used for researching Duchenne Muscular Dystrophy. Homozygotes are viable and fertile. In addition, based on the independently developed TurboKnockout fusion BAC recombination technology, Cyagen provides other humanized models such as [hE49-53, del E50], [hE44-45], [hE44-45, del E44], [hE44-45, c.6438+2 T to A], and [hE8-30], covering most popular research areas and offering customized services based on different mutation needs.
参考文献
Duan D, Goemans N, Takeda S, Mercuri E, Aartsma-Rus A. Duchenne muscular dystrophy. Nat Rev Dis Primers. 2021 Feb 18;7(1):13.
Babbs A, Chatzopoulou M, Edwards B, Squire SE, Wilkinson IVL, Wynne GM, Russell AJ, Davies KE. From diagnosis to therapy in Duchenne muscular dystrophy. Biochem Soc Trans. 2020 Jun 30;48(3):813-821.
系統作製戦略
The partial intron 48 to partial intron 53 of mouse Dmd was replaced with the partial intron 48 to partial intron 53 of human DMD.

Figure 1. Gene editing strategy of B6-hDMD (E49-53) mice.
適用分野
Research on the pathogenesis of Duchenne Muscular Dystrophy (DMD);
Preclinical efficacy evaluation of DMD therapeutic drugs.
検証 Data
1. RT-PCR
cDNA was obtained by reverse transcription using primers specifically paired with human DMD mRNA, followed by gel electrophoresis to determine the expression of the human DMD gene. The results show the presence of human DMD cDNA bands in B6-hDMD (E49-53) mouse tissues, with band sizes matching the expected values.

Figure 2. RT-PCR detection of gene expression in B6-hDMD (E49-53) mice.
Note: Due to the length of the target band sequence, two pairs of primers were designed for amplification; the first four bands are amplified by the F1/R1 primer pair, and the latter four bands are amplified by the F2/R2 primer pair.
2. cDNA sequencing
Sequencing analysis of the DMD cDNA reverse-transcribed from mRNA shows that the exon 49-53 region of the Dmd gene in B6-hDMD (E49-53) mice corresponds to the respective sequences in the human DMD gene, with nucleotide sequences identical to the reference sequences in the human DMD gene.

Figure 3. Gene sequencing results of the exon 49-53 region in B6-hDMD (E49-53) mice.
3. Gene expression
The RT-qPCR results show that the human DMD gene is significantly expressed in the skeletal muscle, cerebral cortex, and heart of B6-hDMD(E49-53) mice, while no expression is detected in wild-type mice. The mouse Dmd gene is significantly expressed in wild-type mice but is not expressed in B6-hDMD(E49-53) mice. (Bars represent mean ± SEM,n=4)

Figure 4. RT-qPCR Analysis in 6-week-old male homozygous B6-hDMD(E49-53) and Wild-Type (WT) Mice.
Note: The primers that detect the expression of the human DMD gene and the mouse Dmd gene target the Exon 50-51 region.
4. Protein expression
The Western Blot analysis shows that B6-hDMD(E49-53) mice normally express the DMD protein in skeletal muscle, cerebral cortex, and heart.

Figure 5. Western blot analysis of DMD protein expression in 6-week-old male homozygous B6-hDMD(E49-53) and Wild-Type (WT) Mice.
Note: The antibody used for detecting mouse DMD protein targets aa. 3550-3678. The gene sequence encoding this binding region is located after the humanized sequence (approximately in the exon 78-79 region).
5. Serum Creatine Kinase (CK) Level
Creatine kinase is a component of the myocardial enzyme spectrum, and elevated serum creatine kinase levels are related to muscle and myocardial damage. The blood biochemical results show that the CK values in B6-hDMD(E49-53) mice are similar to those in wild-type mice. (Bars represent mean ± SEM, n=4)

Figure 6. Serum creatine kinase (CK) levels in 6-week-old male homozygous B6-hDMD(E49-53) and wild-type (WT) mice.
6. Behavioral Testing: Grip Strength Test (1.3-month-old)
Statistical comparisons were performed using unpaired t-test; *p<0.05, **p<0.01, ***p<0.001.
Indications for Grip Strength:
hDMD (E49–53) mice exhibited a significant increase in grip strength in both sex-specific and mixed-sex comparisons.

Figure 7. Grip strength of hDMD (E49-53) at 1.3 months of age.
7. Behavioral Testing: Treadmill Test (1.3-month-old)
(1)Latency

(2)Distance

Figure 8. Latency and distance measurements during treadmill testing in 1.3-month-old hDMD (E49–53) mice.
Statistical comparisons were performed using unpaired t-tests for normally distributed data and the Mann–Whitney test for non-normally distributed data; "ns" indicates no significant differences.
Indications for Treadmill Performance:
Compared to WT mice, hDMD (E49-53) mice showed no significant differences in latency or distance during treadmill testing, indicating comparable intensive locomotor activity.
8. Behavioral Testing: Gait Test (2.3-month-old)
(1)Stride Width
Statistical comparisons were performed using either an unpaired t-test or Welch’s t-test, depending on variance equality. “ns” indicates no statistically significant difference; *p < 0.05, **p < 0.01.

Figure 9. Forelimb and hindlimb stride widths measured during gait analysis in 2.3-month-old hDMD (E49–53) mice.
(2)Left Forelimb and Hindlimb Stride Length
Statistical comparisons were performed using either an unpaired t-test or Welch’s t-test, depending on variance equality. “ns” indicates no statistically significant difference.

Figure 10. Left forelimb and hindlimb stride lengths measured during gait analysis in 2.3-month-old hDMD (E49–53) mice.
(3)Right Forelimb and Hindlimb Stride Length
Statistical comparisons were performed using an unpaired t-test. “ns” indicates no statistically significant difference.

Figure 11. Right forelimb and hindlimb stride lengths measured during gait analysis in 2.3-month-old hDMD (E49–53) mice.
Indications for Stride Width and Length:
At 2.3 months of age, hDMD (E49-53) displayed no significant differences in stride width or stride length relative to WT mice, suggesting unchanged locomotor activity and balance during gait analysis.
9. Serum Creatine Kinase (CK) Level (2.6-month-old)
(1)Before Running
Statistical comparisons were performed using unpaired t-tests for normally distributed data and the Mann–Whitney test for non-normally distributed data; "ns" indicates no significant differences.

Figure 12. Serum creatine kinase (CK) levels in 2.6-month-old hDMD (E49–53) mice prior to treadmill running.
(2)After Running
Statistical comparisons were performed using unpaired t-tests for normally distributed data and the Mann–Whitney test for non-normally distributed data; "ns" indicates no significant differences.

Figure 13. Serum creatine kinase (CK) levels in 2.6-month-old hDMD (E49–53) mice following treadmill running.
(3)ΔCK
Statistical comparisons were performed using unpaired t-tests for normally distributed data and the Mann–Whitney test for non-normally distributed data; "ns" indicates no significant differences.

Figure 14. Changes in serum creatine kinase (CK) levels before and after treadmill running in 2.6-month-old hDMD (E49–53) mice.
Indications for Serum CK Levels:
hDMD (E49-53) mice showed no significant differences in baseline serum CK levels, post-exercise CK levels, or the change (ΔCK) between pre- and post-exercise levels compared to WT mice.
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