Treatment of myotonic dystrophy
Modified MBNL polypeptides with reduced splicing activity bind to CUG repeats to release trapped MBNL proteins, effectively addressing splicing misregulation and alleviating myotonic dystrophy symptoms by restoring MBNL function.
Patent Information
- Application Number
- JP2023072627
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2014-04-14
- Filing Date
- 2023-04-26
- Publication Date
- 2025-10-09
- Estimated Expiration
- 2035-04-14
AI Technical Summary
Current treatments for myotonic dystrophy, such as the use of functional MBNL proteins, fail to effectively reverse splicing misregulation and counteract clinical symptoms like myotonia, as they do not address the trapping of MBNL proteins by pathogenic CUG repeats.
Modified MBNL polypeptides with reduced splicing activity are used to bind to CUG repeats, releasing trapped MBNL proteins and restoring their function, administered via viral vectors to counteract the toxicity of CUGexp-RNA.
The modified MBNL polypeptides effectively normalize misregulated splicing events and alleviate symptoms in myotonic dystrophy by replacing endogenous MBNL proteins, demonstrating significant splicing correction in both in vitro and in vivo models.
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Abstract
Description
[Technical Field]
[0001] FIELD OF THE INVENTION The present invention relates to compositions and methods for the treatment of myotonic dystrophy.
[0002] Background of the Invention Myotonic dystrophy type 1 (DM1), one of the most common neuromuscular diseases in adults, is an inherited, autosomal dominant disorder caused by an unstable CTG expansion located in the 3' untranslated region (UTR) of the myotonic dystrophy protein kinase (DMPK) gene (Brook et al. 1992). The number of CTG repeats varies from 50 to several thousand in affected patients, whereas unaffected individuals have fewer than 38 repeats. Overall, there is a correlation between the size of the CTG repeats, disease severity, and age of onset (inverse correlation) (Hunter et al. 1992; Tsilfidis et al. 1992). The clinical features of DM1 vary but generally include myotonia, progressive muscle weakness and atrophy, and cardiac conduction defects, but also extramuscular symptoms such as cognitive impairment, cataracts, hypogonadism, and endocrine deficiencies (Harper 2001).
[0003] Pathogenic CTG sequences are transcribed to produce RNAs containing expanded CUG repeats located in the 3'UTR of DMPK transcripts (CUGexp-RNA), which are involved in a toxic RNA gain-of-function mechanism in DM1 disease pathogenesis (Klein et al. 2011). CUGexp-RNA, retained in the nucleus as distinct aggregates or foci, alters the function of members of the MBNL and CELF families of RNA splicing factors, resulting in the misregulation of alternative splicing of specific groups of transcripts in DM1-affected tissues (Taneja et al. 1995; Ranum and Cooper 2006). Dysregulation of splicing events primarily leads to the re-expression of lethal splicing patterns in adult DM1 tissues, and missplicing events affecting the pre-mRNAs of CLC-1, INSR, and BIN1 are associated with myotonia, insulin resistance, and muscle weakness, respectively (Savkur et al. 2001; Charlet et al. 2002; Mankodi et al. 2002; Fugier et al. 2011). A recent study conducted on a group of 50 DM1 patients identified 42 splicing abnormalities in affected skeletal muscle and showed that these splicing changes are specific to DM1 compared with other muscle diseases and are primarily due to the loss of function of MBNL1 (Nakamori et al. 2013).
[0004] MBNL1 is a member of the muscleblind-like RNA-binding protein family, which includes MBNL1, -2, and -3 (Pascual et al. 2006), and is the major MBNL protein expressed in adult skeletal muscle (Kanadia et al. 2003; Holt et al. 2009). Like other MBNL protein paralogs, MBNL1 binds with high affinity to expanded CUG repeats and colocalizes with nuclear foci of CUGexp-RNA in DM1 muscle cells (Miller et al. 2000; Fardaei et al. 2001). Entrapment of MBNL1 into these ribonucleoprotein complexes due to the large number of CUG repeats in the mutant RNAs results in loss of its function, resulting in misregulation of alternative splicing of several target pre-mRNAs, including MBNL1 itself. Consistent with this hypothesis, Mbnl1 knockout mice recapitulate most of the deregulated splicing events observed in muscle samples from DM1 patients or DM1 mouse models expressing CUGexp-RNA (Mankodi et al. 2000; Kanadia et al. 2003; Lin et al. 2006; Du et al. 2010). Furthermore, overexpression of functional, full-length MBNL1 (isoforms 40 or 41) in skeletal muscle of DM1 mice is sufficient to correct the splicing abnormality and eliminate myotonia, a hallmark of DM1 disease (Kanadia et al. 2006; Chamberlain and Ranum 2012). Furthermore, WO 2010 / 044894 proposes administering MBNL protein or its functional mutants, i.e., mutants that retain the biological activity of MBNL protein, in the form of chimeric polypeptides conjugated with a targeting moiety. This document does not disclose the use of non-functional MBNL polypeptides for the treatment of DM1.Furthermore, disruption of MBNL2, which is prominently expressed in the brain, deregulates specific splicing events in mice that are also misregulated in human DM1 brains, supporting a prominent role for MBNL2 loss of function in the pathogenesis of human disease (Charizanis et al. 2012). Altogether, these results support loss of MBNL function as an important mechanism involved in RNA toxicity induced by expanded CUG repeats in DM1.
[0005] A modified oligonucleotide antisense approach that interferes with CUGexp-RNA to release MBNL1 from the lesion has already been proposed to reverse splicing misregulation and myotonia in the DM1 mouse model. However, alternative and effective means to reverse splicing misregulation and counteract clinical symptoms such as myotonia in myotonic dystrophy remain needed.
[0006] Summary of the Invention The object of the present invention is to provide novel tools and methods for the treatment of myotonic dystrophy. The present invention is based on the evidence provided herein that modified MBNL polypeptides, particularly those ectopically expressed through the use of viral vectors, are effective in counteracting the toxicity of CUGexp-RNA both in vitro and in vivo.
[0007] One embodiment of the present invention relates to a modified MBNL polypeptide. As described below, the modified MBNL polypeptide of the present invention has reduced splicing activity, particularly at least 50%, particularly at least 60%, 70%, 75%, 80%, 85%, or at least 90%, or even at least 95%, compared to the splicing activity of the full-length MBNL protein, while maintaining its YGCY-binding properties. In particular, the modified MBNL polypeptide of the present invention can bind to a pathological CUG repeat sequence. Furthermore, the modified MBNL polypeptide used herein can counteract the toxicity of CUGexp-RNA by releasing trapped endogenous MBNL proteins, such as MBNL1 and MBNL2, from CUGexp-RNA aggregates, thereby restoring the function of these endogenous MBNL proteins.
[0008] The modified MBNL polypeptide of the present invention is used to treat myotonic dystrophy. Another embodiment relates to a method for treating myotonic dystrophy, comprising administering to a subject in need thereof an effective amount of a modified MBNL polypeptide described in the present invention. A further embodiment of the present invention is the use of a modified MBNL polypeptide as described herein for the manufacture of a medicament for use in the treatment of myotonic dystrophy.
[0009] Another aspect disclosed herein is the use of a modified MBNL polypeptide according to the present invention to replace endogenous MBNL proteins, such as endogenous MBNL1 or MBNL2, derived from CUG repeat sequences in a cell or organism in need thereof, thereby reversing deregulated splicing events induced by CUGexp-RNA expression. In a specific embodiment, the modified MBNL polypeptide is provided to the cell or organism using a viral vector. [Brief explanation of the drawings]
[0010] [Figure 1]Genomic DNA organization of the human MBNL1 gene. The order and names of the exons, as well as the nucleotide length of each exon, are shown. Clear gray boxes indicate UTRs. Colored boxes indicate cassette exons. Open boxes indicate constitutive exons. Alternative splicing of the MBNL1 alternative cassette generates more than 10 isoforms, including MBNL143 or MBNL140. Amino acid lengths (aa) are indicated, and dark gray boxes indicate C3H1 zinc finger motifs. Two are located in MBNL1 exon 2, and the other two are located in MBNL1 exon 4. The modified MBNL1 polypeptide (referred to herein as ΔCT3) is a truncated MBNL1 construct lacking the C-terminal domain after the fourth C3H1 zinc finger motif. [Figure 2] ΔCT3 colocalizes with nuclear CUGexp-RNA aggregates in vitro. GFP, GFP-ΔCT3, or GFP-MBNL140 constructs were cotransfected with 960 CTG repeats into HeLa cells. CUGexp-RNA foci were visualized by FISH using a Cy3-CAG7 probe. [Figure 3] Expression of various MBNL1 isoforms and the ΔCT3 construct restores splicing of the DM1-deregulated tau exon 2 / 3 minigene. The tau exon 2 / 3 minigene contains two alternative cassette 2 and 3 inserts in the psvIRB splicing reporter minigene (Tran et al. 2011). MBNL1 35, 38, 41, or 43 isoforms (Panel A) or GFP-ΔCT3 (Panel B) were coexpressed with the tau exon 2 / 3 minigene and a plasmid containing 960 interrupted CTG repeats in HeLa cells as previously described (Tran et al. 2011). Tau E2 inclusion rates were calculated and established after RT-PCR using primers surrounding tau exon 2 and exon 3. [Figure 4]Nuclear localization of ΔCT3 is required to regulate splicing events. A) GFP-ΔCT3 constructs containing or not containing a nuclear export signal (NES) were coexpressed with or without 960 CTG repeats in HeLa cells. B) Inclusion of cTNT exon 5 or IR exon 11 was assessed by RT-PCR after cotransfection of MBNL or GFP constructs with cTNT exon 5 or IR exon 11 minigenes in HeLa cells. C) Inclusion of tau exon 2 was analyzed in HeLa cells cotransfected with tau exon 2 / 3 minigenes, 960 CTG repeats, and MBNL or GFP constructs. [Figure 5] ΔCT3 can replace MBNL1 derived from CUG repeats in vitro. Recombinant MBNL140 (or ΔCT3) protein was crosslinked to in vitro transcribed 32P RNA containing 95 CUG repeats in the absence or presence of increasing concentrations of recombinant ΔCT3 (MBNL140) protein. [Figure 6] ΔCT3 colocalizes with nuclear CUGexp-RNA in human DM1 muscle cells. Primary DM1 muscle cells were transduced with a lentiviral vector containing a cDNA encoding GFP-ΔCT3. CUGexp-RNA foci were visualized by FISH using a Cy3-CAG7 probe. [Figure 7A-1] ΔCT3 normalizes mis-splicing events in differentiated human DM1 muscle cells. Primary human DM1 muscle cells and non-DM1 muscle cells were transduced with lentiviral vectors expressing GFP-ΔCT3 or GFP alone, or were not transduced. The splicing profiles of BIN1 exon 11, LDB3 exon 7, and DMD exon 78 transcripts were analyzed by RT-PCR. [Figure 7A-2]ΔCT3 normalizes mis-splicing events in differentiated human DM1 muscle cells. Primary human DM1 muscle cells and non-DM1 muscle cells were transduced with lentiviral vectors expressing GFP-ΔCT3 or GFP alone, or were not transduced. The splicing profiles of BIN1 exon 11, LDB3 exon 7, and DMD exon 78 transcripts were analyzed by RT-PCR. [Figure 7B] Differentiated muscle cells (control, DM1, or DM1 expressing C) were transfected or not with MBNL1 siRNA directed against C-terminal exon 9 (present in MBNL1 but not in the ΔCT3 sequence). The splicing profile of DMD exon 78 transcripts was analyzed by RT-PCR. [Figure 8-1] Intramuscular injection of serotype 9 adeno-associated virus (AAV9) containing cDNA encoding GFP-ΔCT3 normalizes splicing misregulation in DM1 mice. HSA-LR mice were injected with AAV9 GFP-ΔCT3 (1 × 10 vg; n = 6) into the gastrocnemius muscle and analyzed 6 weeks later. The contralateral muscle was injected with saline. The splicing profiles of Sercal exon 22, Mbnl1 exon 7, and Clcn1 exon 7a were analyzed by RT-PCR. [Figure 8-2] Intramuscular injection of serotype 9 adeno-associated virus (AAV9) containing cDNA encoding GFP-ΔCT3 normalizes splicing misregulation in DM1 mice. HSA-LR mice were injected with AAV9 GFP-ΔCT3 (1 × 10 vg; n = 6) into the gastrocnemius muscle and analyzed 6 weeks later. The contralateral muscle was injected with saline. The splicing profiles of Sercal exon 22, Mbnl1 exon 7, and Clcn1 exon 7a were analyzed by RT-PCR. [Figure 9]GFP-ΔCT3 colocalizes with nuclear CUGexp-RNA foci in vivo. FISH-IF was performed to detect CUGexp-RNA foci and GFP-ΔCT3 on muscle sections from HSA-LR mice injected with AAV9 GFP-ΔCT3. [Figure 10-1] GFP-ΔCT3 replaces Mbnl1 derived from CUGexp-RNA foci in the nucleus in vivo. FISH-IF was performed to detect CUGexp-RNA foci, endogenous Mbnl1, and GFP-ΔCT3 on muscle sections from HSA-LR mice injected with AAV9 GFP-ΔCT3 or saline. The peak intensity of each component was measured along an arbitrary lane across the foci observed in the nucleus. [Figure 10-2] GFP-ΔCT3 replaces Mbnl1 derived from CUGexp-RNA foci in the nucleus in vivo. FISH-IF was performed to detect CUGexp-RNA foci, endogenous Mbnl1, and GFP-ΔCT3 on muscle sections from HSA-LR mice injected with AAV9 GFP-ΔCT3 or saline. The peak intensity of each component was measured along an arbitrary lane across the foci observed in the nucleus. [Figure 11] Intramuscular injection of AAV9 GFP-ΔCT3 reverses myotonia in DM1 mice. Force relaxation was measured in HSA-LR gastrocnemius muscles injected with AAV9 GFP-ΔCT3 (1 × 10 vg; n = 6) or saline (contralateral muscles) 6 weeks after injection. Force relaxation was also measured in the gastrocnemius muscles of FVB wild-type mice. [Figure 12] There was no sign of muscle degeneration in FVB wild-type mice expressing AAV9 GFP-ΔCT3. The tibialis anterior muscles of FVB wild-type mice were injected with AAV9 GFP-ΔCT3 (1 × 10 vg; n = 6) and analyzed by IF 3, 4, or 6 weeks later. The contralateral muscles were injected with empty AAV9 MCS. Embryonic MyHC and laminin antibodies were used to detect regenerating and myofibers, respectively. Nuclei were stained with DAPI. [Figure 13]Expression of AAV9 GFP-ΔCT3 alone did not deregulate alternative splicing in wild-type mice. FVB wild-type mice were injected with AAV9 GFP-ΔCT3 (1 × 10 vg; n = 6) into the tibialis anterior muscle, and the splicing profile of Clcn1 exon 7a or Sercal exon 11 was analyzed 3, 4, or 6 weeks after transduction. The contralateral muscle was injected with empty AAV MCS. [Figure 14-1] Intramuscular injection of AAV9 GFP-ΔCT3 normalizes splicing misregulation in DM1 mice. HSA-LR mice were injected with AAV9 GFP-ΔCT3 (1×1011vg; n=6) into the tibialis anterior muscle and analyzed 6 weeks later. The contralateral muscle was injected with AAV9 MCS. The splicing profiles of Clcn1 exon 7a, Sercal exon 11, and LDB3 exon 11 were determined by RT-PCR. [Figure 14-2] Intramuscular injection of the AAV9-V5-ΔCT construct. The NLS-V5-ΔCT and V5-ΔCT3 constructs, in contrast to the V5-ΔCT(-3) construct lacking exon 3, normalize splicing misregulation in DM1 mice. HSA-LR mice were injected with the AAV9-V5-ΔCT construct (5 × 10 vg; n = 3) into the tibialis anterior muscle and analyzed 6 weeks later. The contralateral muscle was injected with PBS. The splicing profiles of Clcn1 exon 7a and Secal exon 11 were determined by RT-PCR. [Figure 15]ΔCT3 restores MBNL2 splicing-dependent events. MBNL constructs (MBNL1, panel A; MBNL2, panel B; ΔCT3, panel C) were coexpressed with a human tau exon 2 minigene and 960 CTG repeats in T98G cells as described (Carpentier et al., 2014). Tau E2 inclusion was analyzed by RT-PCR. The graph shows the tau exon 2 inclusion rate (mean ± standard error for at least three independent experiments). Significant differences are indicated by asterisks: *, p<0.05; **, p<0.01; ***, p<0.001). 18S transcripts were used as an internal control to confirm RNA quantity. DT960 transfection efficiency was confirmed by RT-PCR of the 3'UTR of the human DMPK gene. Panel D shows the mutated MBNL1 site (bold gray) that was mutated in the mutant MBNL construct.
[0011] Detailed Description of the Invention The modified MBNL polypeptides of the present invention can bind to the MBNL YGCY RNA motif, where "Y" represents a pyrimidine (uridine or cytosine). In particular, the modified MBNL polypeptides of the present invention can bind to the UGCU motif, which is a building block of the CUG repeat sequence expanded in pathogenic DM1. In a specific embodiment, the modified MBNL polypeptides of the present invention contain or do not contain amino acids corresponding to exon 3 of MBNL1 mRNA (Accession No. NM_021038). In a further embodiment, the modified MBNL polypeptides of the present invention contain amino acids corresponding to exons 5-10 of MBNL1 mRNA (Accession No. NM_021038). [Table 1] It is missing amino acids.
[0012] As used herein, the term "MBNL" refers to all paralogous members of the muscleblind-like RNA-binding protein family, particularly including MBNL1, -2, and -3. In certain embodiments, the modified MBNL polypeptides described herein are derived from the human MBNL1 protein sequence. In one embodiment, the modified MBNL polypeptide is an MBNL1 protein that has the sequence encoded by exon 3 but lacks the amino acid sequence encoded by exons 5 to 10 of the MBNL1 gene. In a specific embodiment, the modified MBNL1-derived polypeptide has the following amino acid sequence: [Table 2] The resulting product is called ΔCT3.
[0013] In one embodiment, the modified MBNL1 polypeptide is an MBNL1 protein lacking both the sequence encoded by exon 3 and the sequence encoded by exons 5 to 10 of the MBNL1 gene. In a specific embodiment, the non-functional MBNL1-derived polypeptide has the following amino acid sequence: [Table 3] is referred to as ΔCT having
[0014] In another embodiment, the modified MBNL2 polypeptide is an MBNL2 protein encoded by the amino acid sequence of exons 2 to 5 of the MBNL2 protein. In a specific embodiment, the modified MBNL2-derived polypeptide has the following amino acid sequence: [Table 4] The resulting clone was designated MBNL2-ΔCT3.
[0015] As used herein, a "variant" of the modified MBNL polypeptide of the present invention refers to a protein having the same or similar binding properties for the YGCY motif, particularly for the CUG repeat sequence, as the wild-type MBNL protein (particularly MBNL1, 2, or 3) from which it is derived, or the modified MBNL protein of SEQ ID NO:2, SEQ ID NO:3, or SEQ ID NO:4 as shown above, and the variant has reduced splicing activity compared to the wild-type MBNL protein. In other words, the modified MBNL polypeptide used in the present invention is a non-functional MBNL polypeptide that has reduced or even no splicing activity compared to the wild-type parent MBNL protein. The use of such a non-functional MBNL polypeptide with respect to its splicing activity for the treatment of myotonic dystrophy has never been reported in the prior art, because all previous therapeutic attempts were carried out using functional MBNL protein, i.e., a protein that has all the characteristics of the wild-type protein, including its ability to bind to the YGCY motif and its splicing activity. Indeed, previous attempts aimed to provide overexpression of MBNL protein by treated cells, which would compensate for the reduction of free and functionally available endogenous MBNL protein trapped on the pathogenic repeat sequence. The strategy applied in this disclosure is not relevant. Instead of providing overexpression of functional MBNL protein, the inventors propose to introduce modified MBNL protein, i.e., non-functional mutant MBNL protein with reduced or even no splicing activity, into cells in need thereof to compete with, substitute for, and replace the endogenous MBNL protein(s) thereon, thereby avoiding the negative consequences of its trapping. As presented in the experimental section of this disclosure, the results obtained using this strategy were very satisfactory.
[0016] In particular embodiments, a variant according to the present invention may have an amino acid sequence that is at least 50%, particularly at least 60%, 70%, 80%, 90%, more particularly at least 95% or even at least 99% identical to the amino acid sequence corresponding to exons 1 to 4 of a wild-type MBNL protein (e.g., MBNL1, 2 or 3), or to the amino acid sequence set forth in SEQ ID NO: 2, 3 or 4.
[0017] In certain embodiments of the present invention, the modified MBNL polypeptide of the present invention is not a chimeric peptide consisting of an MBNL polypeptide and a targeting moiety.
[0018] The present invention embodies modified MBNL polypeptides that have almost no splicing activity or that otherwise have reduced activity compared to wild-type MBNL protein. By "almost no activity" or "reduced activity," we mean splicing activity that is reduced by at least 50%, particularly at least 60%, 70%, 75%, 80%, 85%, 90%, or even at least 95% compared to the splicing activity of wild-type MBNL protein. Such activity can be determined according to methods well known to those skilled in the art, such as using minigenes to analyze alternative splicing of exon 5 of cTNT, exon 11 of IR, and exon 2 of tau (Tran et al., 2011).
[0019] In certain embodiments, the modified MBNL proteins of the present invention may include a localization sequence, such as a nuclear localization sequence (NLS) or a nuclear export signal (NES). An exemplary NLS has the sequence set forth in SEQ ID NO:5:PKKKRKV. An exemplary NES has the sequence set forth in SEQ ID NO:6:LPPLERLTLD. The present disclosure includes any modified MBNL polypeptide, as described above, in combination with such a localization sequence, particularly an NLS or NES, such as those specifically described above.
[0020] The present invention further relates to pharmaceutical compositions comprising the modified MBNL polypeptides of the present invention or variants thereof.
[0021] Another aspect of the present invention is a nucleic acid sequence comprising or consisting of a nucleotide sequence encoding a modified MBNL polypeptide according to the present invention. The present invention further relates to a genetic construct consisting of or comprising a nucleotide sequence as defined herein and regulatory sequences (e.g., suitable promoter(s), enhancer(s), terminator(s), etc.) that allow expression (e.g., transcription and translation) of a modified MBNL polypeptide according to the present invention in a host cell. The genetic construct of the present invention may be DNA or RNA, preferably double-stranded DNA. The genetic construct of the present invention may also be in a form suitable for transformation of a desired host cell or host organism, for integration into the genomic DNA of the desired host cell, or for independent replication, maintenance, and / or inheritance in the desired host organism. For example, the genetic construct of the present invention may be in the form of a vector, such as a plasmid, cosmid, YAC, viral-encoding vector, or transposon. In particular, the vector may be an expression vector, i.e., a vector capable of providing expression in vitro and / or in vivo (e.g., in a suitable host cell, host organism, and / or expression system). In a preferred, but non-limiting embodiment, the genetic construct of the present invention comprises i) at least one nucleic acid sequence of the present invention operably linked to ii) one or more regulatory sequences, such as a promoter and optionally a suitable terminator; and optionally also to iii) one or more further sequences of the genetic construct, such as a 3'- or 5'-UTR sequence, a leader sequence, a selection marker, an expression marker / reporter gene, and / or a sequence that may facilitate or increase (the efficiency of) transformation or integration or subcellular localization or expression of the modified MBNL polypeptide, such as a nuclear localization signal (NLS) or a nuclear export signal (NES).
[0022] In a specific embodiment, the genetic construct corresponds to the genome of a recombinant viral vector. Suitable viral vectors for use in carrying out the present invention include retroviruses, lentiviruses, adenoviruses, and adeno-associated viruses. In particular, the present invention relates to lentiviruses comprising a nucleic acid sequence encoding a modified MBNL polypeptide described in the present invention. In another specific embodiment, the present invention relates to an AAV vector, particularly an AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, or AAV11 vector, particularly an AAV9 vector, comprising a nucleic acid sequence encoding a modified MBNL protein described in the present invention. The AAV vector may be a pseudotyped vector, i.e., its genome and its capsid may be derived from different AAV serotypes. For example, the genome may be derived from an AAV2 genome and the capsid protein may be of the AAV1, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, or AAV11 serotype.
[0023] Another aspect relates to a modified MBNL polypeptide according to the invention for use as a medicament.
[0024] The modified MBNL polypeptides of the present invention are useful therapeutic agents, particularly in the treatment of diseases or disorders associated with MBNL protein trapping or deregulated function of MBNL members such as MBNL1 or other paralogous members (including MBNL2 and MBNL3). In a preferred embodiment, the modified polypeptides of the present invention are used to treat myotonic dystrophies such as DM1 and DM2, or any disease in which reduced MBNL function (e.g., trapping, aggregation, mutation, etc.) can be rescued by ectopic delivery of the modified MBNL polypeptides of the present invention.
[0025] In a further aspect, the present invention relates to a modified MBNL polypeptide as described above for use in a method for the treatment of myotonic dystrophy.
[0026] The term "treatment" or "therapy" as used herein includes curative and / or prophylactic treatment. More specifically, curative treatment refers to either the alleviation, remission, and / or elimination, reduction, and / or stabilization (e.g., inability to progress to a more advanced stage) of symptoms, as well as the delay in the progression of symptoms of a particular disease. Prophylactic treatment refers to the arrest of onset, delay in onset, reduction in occurrence, reduction in risk of occurrence, reduction in incidence, reduction in severity, and extension of the time to onset of symptoms and extension of survival for a given disease.
[0027] Thus, a method for treating myotonic dystrophy in a subject in need thereof is described, the method comprising administering to the patient a modified MBNL polypeptide according to the present invention, or a nucleic acid sequence encoding the MBNL polypeptide.
[0028] In the context of the present invention, a "subject" or "patient" refers to a mammal, particularly a human, suffering from myotonic dystrophy, regardless of age or sex. This term specifically includes domestic animals and common laboratory mammals, such as non-human primates, cats, dogs, horses, pigs, cows, goats, sheep, rabbits, rats, and mice. Preferably, the patient to be treated is a human, e.g., a child or adolescent.
[0029] For the uses and methods described herein, modified MBNL polypeptides, nucleic acids, gene constructs, or viral vectors (e.g., lentiviral vectors or AAV vectors) can be formulated by methods known in the art. Furthermore, any route of administration is contemplated. For example, modified MBNL polypeptides, nucleic acids, gene constructs, and viral vectors (e.g., lentiviral vectors or AAV vectors) can be administered by any conventional route of administration, including, but not limited to, oral, intrapulmonary, intraperitoneal (ip), intravenous (iv), intramuscular (im), subcutaneous (sc), intradermal, buccal, intranasal, sublingual, intraocular, rectal, and intravaginal. Furthermore, direct administration to the nervous system can include, but is not limited to, intracerebral, intraventricular, intracerebroventricular, intrathecal, intracisternal, intraspinal, or paraspinal routes of administration, via delivery via intracranial or intravertebral needle or catheter, with or without a pump device. It will be readily apparent to those skilled in the art that any dose or administration frequency that produces the therapeutic effects described herein is suitable for use in the present invention. In a specific embodiment, a subject is administered a viral vector encoding a modified MBNL polypeptide according to the present invention by intramuscular route. In a specific variant of this embodiment, the vector is an AAV vector, as defined above, particularly an AAV9 vector. In a more specific embodiment, the subject receives a single injection of the vector.
[0030] Furthermore, the duration of action can be adjusted using standard pharmaceutical methods, which are well known in the art and include controlled release formulations, and can include suitable macromolecules such as polymers, polyesters, polyamino acids, polyvinylpyrrolidone, ethylene vinyl acetate, methylcellulose, carboxymethylcellulose, or protamine sulfate.
[0031] Additionally, pharmaceutical compositions may include nanoparticles containing the modified MBNL polypeptides of the present invention.
[0032] The following examples illustrate the invention without limiting its scope.
[0033] Example Materials and Methods Plasmid and virus production The plasmid containing the DMPK 3'UTR, which contains 960 interrupted CTGs, was a minigene vector also under the control of the CMV promoter (a kind gift from T. Cooper, Baylor College of Medicine, Houston, TX, USA). The sequences of the MBNL1 full-length mutant construct and the truncated ΔCT3 construct used in this study were previously described (Tran et al. 2011). The NES, derived from the HIV REV protein (Fischer et al. 1995), was fused to the ΔCT construct. The splicing activity of MBNL1, ΔCT3, and ΔCT3-NES was assessed using three previously described minigenes: the RTB300 minigene containing exon 5 of human cTNT (hcTNT); the INSR minigene containing exon 11 of the human insulin receptor; and the pSVIRB / tau minigene containing exons 2 and 3. All plasmid DNA was double-strand sequenced at GATC Biotech (France) and purified using the Nucleobond® AX endotoxin-free kit (Macherey Nagel, Germany). cDNA encoding GFP-ΔCT3 or GFP protein containing both Kozak consensus sequences was cloned into the SIN-cPPT-PGK-WHV or pSMD2 transfer vector. Lentiviral and AAV9 vectors were obtained as previously described (Caillierez et al. 2013; Francois et al. ; Fugier et al. 2011) and stored frozen at -80°C. Recombinant GST-MBNL1 and ΔCT3 proteins were produced, and UV cross-linking experiments were performed as previously described (Laurent et al. 2012, Tran et al. 2011). Human tau minigene and mutant MBNL constructs were described (Carpentier et al. 2014). Briefly, the human tau E2 minigene consists of sequences from exon 1, exon 2, and exon 4 of the human MAPT gene inserted into the pEGFPN1 eukaryotic expression vector (Clontech).Exon 2 is preceded and followed by 878 and 2100 nucleotides of intronic sequences 2 and 3 of the human MAPT gene, respectively (detailed in Carpentier et al., 2014). Figure 15D, Seq250 E2 250 MBNL1 mutation site, shows the 250 nucleotides of intronic sequence surrounding exon 2 where the MBNL binding site is mutated (bold gray sequence). This mutant minigene is no longer responsive to MBNL splicing regulatory activity. These minigenes were generated by GeneArt® (Gene Synthesis company), and the sequence of the plasmid preparation was confirmed by double-stranded sequencing by GATC (Biotech, Constance, Germany).
[0034] Cell culture, transfection, and infection HeLa cells were grown in monolayer culture in six-well plates in Dulbecco's modified essential medium (DMEM) (Invitrogen) supplemented with 10% fetal bovine serum (FBS) in a humidified CO2 (5%) incubator at 37°C. Cells grown to approximately 70% confluence were transiently cotransfected in triplicate with 1 μg of minigene plasmid DNA, 1 μg of CUG repeats, and 3 μg of MBNL plasmid DNA using FuGENE HD transfection reagent (Roche Diagnostics) according to the manufacturer's instructions.
[0035] Human muscle cells were isolated from skeletal muscle biopsies as described (Furling et al., 2001) in accordance with French ethical regulations. Wild-type (WT) and DM1 myoblasts were grown in HAM's F10 medium supplemented with 20% FBS and 5 μg / mL gentamicin (Invitrogen) at 5% CO2 and 37°C. 2 × 10 cells were cultured using 100 ng of P24 / μl. 5Human muscle cells were transduced. Vector transduction was performed overnight in the presence of 4 μg / ml polybrene (Sigma). To trigger differentiation, growth medium was removed from subconfluent cultures and replaced with DMEM supplemented with 10 μg / ml insulin (Sigma).
[0036] In vivo gene transfer and experiments HSA-LR mice were obtained from C. Thornton, and control FVB mice were obtained from Janvier. All mouse procedures were performed under biocontainment in accordance with experimental protocols approved by the Ethics Committee for Animal Resources at the Functional Development Center of the Pitié-Salpêtrière Animal Facility. Adult mice were injected into the gastrocnemius or tibialis anterior muscles with 30–100 μl of physiological solution containing or not containing the AAV9 vector, respectively. For each mouse, one muscle was injected with AAV GFP-ΔCT3, and the contralateral muscle was injected with a control AAV containing any transgene (MCS), GFP, or vehicle alone (PBS). Six weeks after injection, muscle isometric contractions were measured as previously described (Mouisel et al. 2006). Mice were then sacrificed, and muscles were collected, flash-frozen in liquid nitrogen-cooled isopentane, and stored at -80°C.
[0037] Fluorescence in situ hybridization (FISH) and immunofluorescence Fluorescence in situ hybridization (FISH) was performed as described using a Cy3-labeled 2-O-methyl RNA (CAG)7 probe. Combined FISH immunofluorescence (IF) experiments were performed as described (Francois et al.) using a polyclonal MBNL1 antibody (Everest Biotech.) or GFP (Invitrogen) antibody, followed by a Cy5- or Alexa488-conjugated anti-secondary antibody, respectively. Photographs were taken using a Leica confocal microscope and software (Leica microsytems) and processed using ImageJ software. Immunofluorescence on muscle sections was performed as described using an embryonic MyHC antibody (Novocastra) and a laminin antibody (Novocastra).
[0038] Protein extraction and Western blot analysis Western blots were performed using standard methods with anti-GFP antibody (Santa Cruz) or anti-GAPDH antibody (Tebu-Bio) as previously described (Tran et al. 2011).
[0039] RNA extraction and semi-quantitative analysis Total RNA was isolated using a total RNA extraction kit (Nucleospin® RNA II Kit, Macherey Nagel) or Trizol reagent (Invitrogen) according to the manufacturer's protocol. RNA concentration was measured by measuring absorbance at 260 nm using Nanodrop (Labtech). RT-PCR was performed using 1 μg of total RNA according to standard protocols using random hexamers and M-MLV reverse transcriptase (Invitrogen). No DNA amplification was observed in the RT control. PCR was performed as previously described. Reaction products were separated by electrophoresis using 5% or 8% polyacrylamide gels, and bands were stained with SYBR Gold (Invitrogen). SYBR Gold emission intensity was measured using a FluoroImager scanner (Claravision). PCR experiments were repeated at least three times.
[0040] statistical analysis Statistical analysis was performed with the aid of Prism6 software (GraphPad Software Inc.) using two-tailed P values and unpaired t tests.
[0041] result In a previous study focusing on the binding affinity and splicing activity of various MBNL1 isoforms, we showed that a truncated MBNL1 construct lacking the C-terminal domain (ΔCT3, Figure 1) maintained YGCY-binding properties and slightly lower affinity compared to the full-length MBNL1 isoform, but its splicing activity was dramatically reduced due to the absence of sequences encoded by exons 5–10 (Tran et al. 2011). To assess whether the non-functional ΔCT3 polypeptide could still bind to pathogenic CUG repeats, we co-transfected HeLa cells with the expanded CUG repeats and either the MBNL1 construct or the GFP-tagged ΔCT3 construct. As observed in Figure 2, GFP-ΔCT3 colocalized with the nuclear foci of CUGexp-RNA, as observed with full-length MBNL1. We next investigated the effect of GFP-ΔCT3 or MBNL1 constructs on splicing events deregulated in DM1 by coexpressing them with expanded CUG repeats and analyzing the splicing of tau exons 2 / 3 using a splicing reporter minigene in HeLa cells (Figure 3). In the presence of CUG repeats, tau exon 2 inclusion is significantly reduced, as observed in DM1 patients, and overexpression of various MBNL1 isoforms with similar splicing activity (Tran et al. 2011) partially restores tau exon 2 inclusion (Figure 3A). However, overexpression of the GFP-ΔCT3 construct, whose splicing activity is reduced by more than 80% compared to MBNL1, also corrects the splicing changes of the tau exons 2 / 3 minigene to the same extent as MBNL1 (Figure 3B). This result suggests that GFP-ΔCT3 can interact with the CUG repeats to release functional MBNL1, which is involved in regulating the splicing of tau exon 2, because the residual splicing activity of GFP-ΔCT3 does not appear to be sufficient to restore normal tau splicing in the presence of the CUG repeats.To confirm this hypothesis, we generated a GFP-ΔCT3 construct fused to a strong nuclear export signal (NES) derived from the HIV REV protein (Fischer et al. 1995). As expected, GFP-ΔCT3-NES showed complete cytoplasmic localization compared to GFP-ΔCT3, which showed nucleocytoplasmic localization (Figure 4). Due to its efficient nuclear export and exclusive cytoplasmic localization, GFP-ΔCT3-NES no longer possesses residual splicing activity, as shown using a minigene for hcTNT exon 5 and IR exon 11 (Figure 4B). In contrast, coexpression of GFP-ΔCT3-NES with a splicing reporter minigene for CUG repeats and tau exons 2 and 3 still restores normal tau splicing, as previously observed using full-length MBNL1 and GFP-ΔCT3 (Figure 4C). As shown in Figure 4A, GFP-ΔCT3-NES colocalizes with CUGexp-RNA foci, whereas the remaining free, unbound GFP-ΔCT3-NES is effectively exported from the nucleus and is therefore no longer available to regulate alternative splicing. Collectively, our results indicate that ΔCT3 reverses splicing events deregulated in the presence of pathogenic CUG repeats by saturating CUG-binding sites and releasing sufficient amounts of functional MBNL1 from CUGexp-RNA foci.
[0042] To confirm that ΔCT3 can bind to CUG repeats and compete for binding with MBNL1, recombinant MBNL1 protein was incubated with an in vitro transcribed ΔCT3 protein containing 95 CUG repeats in the absence or presence of increasing concentrations of recombinant ΔCT3 protein. 32 P RNA was crosslinked to the P RNA (or vice versa) (Fig. 5). In both conditions, increasing concentrations of recombinant ΔCT3 or MBNL1 could reduce the amount of recombinant MBNL1 or ΔCT3, respectively, indicating that ΔCT3 can compete with and effectively replace MBNL1 derived from the CUG repeat sequence.
[0043] To assess whether ΔCT3 could interact with CUGexp-RNA in DM1 cells and regulate the molecular hallmark of DM1, namely misregulated alternative splicing, human primary muscle cell cultures from DM1 and non-DM1 patients were transduced with lentiviral vectors expressing either GFP-ΔCT3 or GFP. As shown in Figure 6, GFP-ΔCT3 colocalized with nuclear CUGexp-RNA foci in DM1 muscle cells. We next examined the effect of GFP-ΔCT3 on the splicing misregulation of DMD, BIN1, and LDB3 transcripts, which are aberrantly spliced in differentiated DM1 muscle cells (Figure 7A) (Francois et al. 2011). Expression of GFP-ΔCT3 significantly normalized the splicing profiles of these transcripts in DM1 cells, whereas it had no effect on their splicing in control, non-DM1 cells. These results confirm that expression of GFP-ΔCT3 can reverse the molecular changes induced by toxic CUGexp-RNA in DM1 muscle cells. Furthermore, they also demonstrate that modified GFP-ΔCT3 alone does not alter the splicing of endogenous targets. To further decipher the mechanism of action of modified GFP-ΔCT3, we silenced MBNL1 using siRNA in muscle cells treated with GFP-ΔCT3. As shown in Figure 7B, GFP-ΔCT3 required MBNL1 activity to fully restore the splicing profile of DMD in DM1 muscle cells. Note that deletion of MBNL1 in control muscle cells altered the splicing profile of DMD. This result indicates that GFP-ΔCT3 does not directly affect splicing in DM1 cells. Therefore, ΔCT3 requires the release of functional MBNL1 from increased CUG-RNA to correct the splicing changes in DM1 cells.
[0044] The ability of ΔCT3 to neutralize RNA toxicity induced by expanded CUG repeats in vivo was next tested in a DM1 mouse model (HSA-LR) expressing 220 CTGs in the 3'UTR of the human skeletal actin gene (Mankodi et al. 2000). These mice accumulate CUGexp-RNA in the nuclei of their skeletal muscle fibers and exhibit missplicing events and myotonia. HSA-LR mice were intramuscularly injected with the AAV9-GFP-ΔCT3 vector into the gastrocnemius (GAS) muscle, while the contralateral GAS was injected with saline solution. Six weeks later, the contractile properties of these muscles were measured in situ, after which the mice were sacrificed and the muscles were harvested for histological and biochemical analysis. Among the splicing alterations in HSA-LR mice similar to those observed in DM1 patients, we investigated the splicing misregulation of Serca1, Mbnl1, and Clc-1. As shown in Figure 8, injection of AAV9-GFP-ΔCT3 corrected the splicing patterns of these transcripts compared with the contralateral HSA-LR muscle and restored a nearly completely normal splicing profile compared with FVB wild-type mice. Notably, AAV9-GFP-ΔCT3 had no effect on the endogenous splicing of these transcripts in FVB wild-type mice, confirming that the ΔCT3 construct had almost no splicing regulatory activity at concentrations equivalent to those of wild-type MBNL1 protein in vivo (Figure 13) or in vitro (Tran et al., 2011). Collectively, our results suggest that ΔCT3 competes with endogenous MBNL1 for aberrant binding to the expanded CUG repeat sequence, thereby releasing functional MBNL1 trapped in CUGexp-RNA aggregates. To support our data showing that ΔCT3 releases fully functional Mbnl1 from CUGexp-RNA foci and restores a normal alternative splicing profile in HSA-LR mice, we monitored its nuclear localization on muscle sections (Fig. 9 ).As expected, ΔCT3 colocalized with CUGexp-RNA foci in myonuclei of HSA-LR mice injected with AAV9-GFP-ΔCT3. In contrast, colocalization (as indicated by peak intensity) of overlapping Mbnl1:CUGexp-RNA foci in control HSA-LR mice was greatly reduced in AAV9 GFP-ΔCT3-injected mice (Fig. 10), confirming that ΔCT3 displaces MBNL1 into the foci and replaces sufficient endogenous MBNL1 to restore functional MBNL-dependent splicing activity in DM1 mice.
[0045] At a physiological level, it has been established that the myotonia observed in this DM1 mouse model results from aberrant splicing of the muscle-specific chloride channel Clc-1 exon 7a (Wheeler et al. 2007). Myotonia is characterized by muscle hyperexcitability, resulting in sustained discharge and delayed force relaxation. Because the missplicing of Clc-1 exon 7a was almost completely normalized by expression of ΔCT3, its effect on muscle force relaxation was determined after induced contractions (Figure 11). A significant increase in force relaxation was measured in HSA-LR muscles compared with wild-type FVB mice, confirming the myotonia previously established by electromyography in these DM1 mice. In the GAS muscles of HSA-LR mice injected with AAV9-GFP-ΔCT3, the manifestation of myotonia due to abnormal force relaxation was abolished when compared with the contralateral muscles, while no significant changes were detected in muscle strength or muscle histology (data not shown). Furthermore, wild-type mice were also injected with AAV9-GFP-ΔCT3 or empty AAV9-MCS into the tibialis anterior (TA) muscle and sacrificed 3, 4, and 6 weeks later (Figure 12). These muscles showed no signs of toxicity or muscle regeneration / degeneration, as indicated by centralized nuclei, re-expression of embryonic myosin heavy chain, and the near absence (less than 1%) of abnormally sized myofibers. Furthermore, the splicing profile of aberrantly spliced genes in DM1 mice is not perturbed in wild-type mice by either ΔCT3 expression or AAV9 transduction (Figure 13). Finally, injection of AAV9-GFP-ΔCT3 into the TA muscle of HSA-LR mice also corrects splicing misregulation of several DM1 genes compared with contralateral muscles injected with empty AAV9-MCS (Figure 14). Furthermore, the addition of a nuclear localization signal (NLS) to the ΔCT3 construct does not alter its potency in HSA-LR mice (Figure 14-2). In contrast, the removal of exon 3 from the ΔCT3 construct prevents its splicing-correction activity.
[0046] Because MBNL2 can also bind to expanded CUG repeats, resulting in their capture, we investigated whether the splicing alterations associated with MBNL2 deficiency could be corrected by ΔCT3. As shown in Figure 15A, by cotransfecting a human tau E2 minigene with expanded CUG repeats with either an MBNL construct or a GFP-tagged ΔCT3 construct into T98G cells, overexpression of MBNL1 failed to correct the aberrant splicing of tau exon 2. In contrast, overexpression of MBNL2 reversed this deregulated splicing event induced by the presence of expanded CUG repeats (Figure 15B), indicating that the missplicing of the human tau E2 minigene induced by the presence of expanded CUG repeats is due to deficiency of MBNL2 rather than MBNL1. ΔCT3 could also rescue the aberrant splicing of tau exon 2 (Figure 15C). The rescue effect observed with either MBNL2 or ΔCT3 overexpression was abolished using an MBNL mutant minigene (Figures 15B and 15C) containing a mutated MBNL site around exon 2 of tau (Figure 15D), demonstrating that the rescue is not independent of MBNL or results from an indirect effect. Therefore, ΔCT3 can rescue the deregulated splicing events of both MBNL1 and MBNL2 by releasing some MBNL paralogs from the expanded CUG repeat sequence.
[0047] Consideration In this study, we provided evidence that a nonfunctional MBNL1 (ΔCT3), which is largely devoid of splicing activity, is effective in counteracting CUGexp-RNA toxicity both in vitro and in vivo. Thus, intramuscular administration of an AAV vector expressing the ΔCT3 protein corrects both alternative splicing misregulation and myotonia in DM1 mice. ΔCT3, which expresses only the RNA-binding domain of MBNL1, interacts with pathogenic CUG repeats and releases trapped MBNL1 from CUGexp-RNA foci in the nucleus. This mechanism restores endogenous, functional MBNL1 in DM1 muscle cells and corrects DM1-associated phenotypes in vivo. This finding supports the development of a modified, nonfunctional MBNLΔ gene therapy approach as an alternative or complementary therapeutic approach for DM1.
[0048] Based on the ability of MBNL1 to bind to expanded CUG repeats with high affinity, we propose using the MBNL1 RNA-binding domain as bait to block the deleterious interaction between pathogenic repeats and poly-CUG-binding proteins. To test this hypothesis, we generated a modified, non-functional MBNL1 (ΔCT3) that contains only the MBNL1 RNA-binding domain but lacks the C-terminal domain encoded by exons 5-10, which are involved in MBNL1 splicing regulatory activity, MBNL nucleocytoplasmic shuttling, and most likely MBNL oligomerization (Tran et al. 2011). Our results confirm that ΔCT3 maintains its ability to bind to CUG repeats and colocalize with CUGexp-RNA in muscle cells both in vitro and in vivo. As shown by in vitro cross-linking assays, ΔCT3 displaces MBNL1 from the expanded CUG sequence, suggesting that in vivo binding of ΔCT3 to the pathogenic DM1 repeat sequence can either block the deleterious interaction of MBNL1 and other unidentified poly-CUG-binding proteins or displace MBNL1 trapped from nuclear CUGexp-RNA foci. Consequently, release of functional MBNL1 would reverse DM1-misregulated events.
[0049] The normalization of alternative splicing misregulation by ΔCT3 in either DM1 muscle cells or skeletal muscle of DM1 mice supports the ability of ΔCT3 to target the pathogenic CUG repeat sequence and block its access to endogenous MBNL1. However, because in vitro assays showed that the binding properties of ΔCT3 to YGCY were similar to or slightly weaker than those of MBNL1, we wondered whether ΔCT3 could directly regulate events regulated by MBNL1. This appears unlikely, because the splicing activity of ΔCT3, resulting from the deletion of MBNL1 exons 5–10, was dramatically reduced compared to MBNL1 using in vitro minigene assays, and the same results were obtained using the ΔCT3-NES construct, which has no splicing activity due to its strong nuclear export signal. Notably, however, no splicing changes were detected in wild-type mice or control human cells expressing ΔCT3. Rather, our results argue for the release of endogenous MBNL1 from nuclear CUG-exp-RNA foci in muscle cells expressing ΔCT3, which restores functional endogenous MBNL1 activity. MBNL1 is trapped within and colocalizes with CUG-exp-RNA foci in control HSA-LR mice, but its localization is less associated with nuclear foci than ΔCT3 in HSA-LR-injected mice. The trapping of ΔCT3 by CUG-exp-RNA displaces endogenous MBNL1 from these abnormal structures, thereby correcting the misregulated MBNL1 expression in DM1 mice.
[0050] Our AAV-ΔCT3 strategy is the first gene therapy approach to target CUGexp-RNA, inhibiting harmful poly-CUG-binding proteins and correcting their toxic effects in vivo. To date, MBNL protein is nearly the only protein found trapped within nuclear foci in DM1 human tissue samples, and recently, splicing abnormalities present in affected muscles of DM1 patients have been primarily linked to functional loss of MBNL1 (Nakamori et al. 2013). The depletion of functional MBNL splicing factors due to their aberrant binding to and trapping by CUGexp-RNA leads to misregulation of alternative splicing of specific subsets of transcripts, ultimately resulting in pathological changes in DM1 tissues. Thus, events regulated by MBNL1 are associated with abnormalities in DM1 skeletal muscle, whereas events regulated by MBNL2 are misregulated in DM1 brain. Furthermore, overexpression of functional MBNL1 (isoforms -40 and -41) using AAV vectors is sufficient to reverse missplicing and myotonia in DM1 mice, as confirmed by double transgenic HSA-LR:MBNL1-OE mice (Kanadia et al. 2006; Chamberlain and Ranum 2012). This strategy of functional MBNL1 overexpression compensates for the reduction of MBNL1 in DM1 mouse cells by artificially increasing functional MBNL1 levels. Thus, MBNL1 isoforms -40 and -41 have been successfully overexpressed in muscle, although fewer than 10 different MBNL1 isoforms with different expression profiles and tissue-specific patterns have been described. The functions of the various isoforms have not yet been fully established, as indicated by recent reports showing that MBNL1 isoform -43 can interact with Src family kinases (Wang et al. 2012; Botta et al. 2013).Furthermore, MBNL1, which regulates alternative splicing events, is also involved in other RNA processes such as mRNA decay and miRNA biogenesis (Rau et al. 2011; Masuda et al. 2012). ΔCT3, which targets CUGexp-RNA, would circumvent the question of which MBNL1 isoform should be overexpressed, because the trapped endogenous MBNL1 protein would be released in a tissue-specific manner. Furthermore, the mis-splicing of MBNL1 itself, which alters the ratio of MBNL1 isoforms in DM1 tissues, is corrected in muscle tissue from ΔCT3-expressing DM1 mice. Furthermore, it is unclear whether overexpression of MBNL1 can restore or compensate for the loss of other MBNL paralogs, such as MBNL2. We speculate that ΔCT3 may also release other MBNL proteins from CUGexp-RNA and correct the mis-spliced MBNL events in tissues other than skeletal muscle. Our in vitro results indicate that ΔCT3 can likely compensate for the loss of MBNL2 in the context of DM1 (Figure 15). Indeed, aberrant splicing of the human tau E2 minigene in the presence of CUGexp-RNA could be restored by either MBNL2 or ΔCT3, but not by overexpression of MBNL1, suggesting that ΔCT3 can also counteract events misregulated by MBNL2 in DM1. Therefore, taken together, our results indicate that ΔCT3 can balance the effects of targets deregulated by CUGexp-RNA that are regulated by MBNL1, MBNL2, or both. In contrast to the strategy of overexpressing functional MBNL1, which compensates for the reduction of free and functionally available endogenous MBNL1 due to its entrapment in CUGexp-RNA aggregates, nonfunctional ΔCT3 would bind to the expanded CUG repeat sequence, releasing endogenous MBNL1 from CUGexp-RNA aggregates and restoring its subcellular localization and function.
[0051] Among the therapeutic approaches currently under development for DM1, various modified oligonucleotides or small molecule compounds targeting mutant CUGexp-RNA have shown promising beneficial effects in vivo (Mulders et al. 2009; Warf et al. 2009; Wheeler et al. 2009; Garcia-Lopez et al. 2011; Sobczak et al. 2012; Wheeler et al. 2012; Leger et al. 2013). Most of these strategies for reversing the muscle phenotype of DM1 mice share a common feature: the release of trapped MBNL paralogs from CUGexp-RNA foci leads to their subcellular redistribution / relocalization, restoring functional MBNL paralogs and ultimately correcting the DM1-associated phenotype. This mechanism has been described for strategies that either induce degradation of CUGexp-RNA or steric hindrance of the expanded CUG repeat sequence. Here, we propose a novel AAV-ΔCT3 gene therapy for DM1. A single injection of AAV-ΔCT3 was effective in neutralizing RNA toxicity in DM1 mice. In contrast to synthetic oligonucleotides or small molecule compounds, which require repeated treatments, AAV vectors have been shown to persist in muscle for several years (Rivera et al. 2005), allowing for the sustained expression of nonfunctional ΔCT3, which can counteract the persistent expression of toxic CUGexp RNA and trigger long-lasting effects. Therefore, we propose this novel gene therapy approach as a valuable alternative or complementary therapeutic approach for DM1.
[0052] References [Table 5] TIFF0007752148000006.tif242165 TIFF0007752148000007.tif245165 TIFF0007752148000008.tif82165
Claims
1. A modified MBNL polypeptide having YGCY binding properties and reduced splicing activity compared to wild-type MBNL protein, wherein the modified MBNL polypeptide has at least 90%, 95% or at least 99% identity to the amino acid sequence set forth in SEQ ID NO:
4.
2. A nucleic acid molecule encoding a modified MBNL polypeptide as defined in claim 1.
3. A genetic construct, in particular a viral vector genome, comprising a nucleic acid molecule according to claim 2 operably linked to a regulatory sequence.
4. 4. The genetic construct of claim 3, which is a lentivirus or AAV-derived genome.
5. A viral vector comprising the gene construct according to claim 3 or 4.
6. The viral vector of claim 5, which is an AAV vector having an AAV capsid of serotype 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, or 11.
7. The viral vector according to claim 6, which is an AAV vector having an AAV serotype 9 capsid.
8. A pharmaceutical composition comprising a modified MBNL polypeptide according to claim 1, a nucleic acid molecule according to claim 2, a genetic construct according to any one of claims 3-4, or a viral vector according to any one of claims 5-7, for the treatment of a myotonic dystrophy disease, in particular myotonic dystrophy type 1 or myotonic dystrophy type 2, or a disease caused by abnormal capture of MBNL protein.
9. 9. The pharmaceutical composition according to claim 8, which is administered intramuscularly or directly to the CNS or by any conventional route, and wherein the viral vector is an AAV vector, in particular an AAV9 vector.
10. 10. The pharmaceutical composition of claim 9, wherein the AAV vector is administered as a single injection.
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Treatment of myotonic dystrophy
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