WO2014114184A1 - 一种mg53突变体及其突变方法和应用 - Google Patents
一种mg53突变体及其突变方法和应用 Download PDFInfo
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- A61P3/08—Drugs for disorders of the metabolism for glucose homeostasis
- A61P3/10—Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
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Definitions
- the present invention relates to a MG53 mutant (also referred to as a MG53 protein mutant), and the use of the MG53 mutant for protecting heart palpitations and treating heart diseases caused by cell death, in particular while protecting the heart while protecting the heart It avoids side effects such as insulin resistance, obesity, diabetes and metabolic syndrome that are accompanied by MG53, which is also cardioprotective. Background technique
- MG53 is a skeletal muscle-specific protein mitsugumin53, referred to as MG53; or TRIM72.
- Mitsugumin53 MG53
- TAM muscle-specific tripartite motif family
- RING, B-BOX, and coiled domains these proteins are labeled with ubiquitin for degradation on egg A, which is no longer needed by cells.
- MG53 is also an important component of the cell membrane repair mechanism.
- MG53 protects the heart, which means it protects against heart damage by increasing the amount of MG53.
- MG53 has a negative effect that cannot be ignored and is considered a major hazard.
- the increase in MG53 content can cause insulin resistance, obesity, diabetes and metabolic syndrome while protecting the heart.
- MG53 protects the heart with side effects such as insulin resistance, obesity and diabetes. This is a concern of the industry and does not want it: ⁇ A problem of coexistence of negative effects, so far no solution has been resolved. Summary of the invention
- the present invention provides a mutant of MG53 which mutates to any one or two or more cysteines of seven cysteines in the N-terminal RING domain of the MG53 protein to a non-polar amino acid (for example) Alanine) MG53 protein 3 ⁇ 4 variant.
- the MG53 protein mutant protects the heart while avoiding side effects such as insulin resistance, obesity, diabetes, and metabolic syndrome that are accompanied by the same cardioprotective effect of MG53.
- G53 protects the heart, which means it can protect against heart damage by increasing the amount of MG53.
- the increase in MG53 content can cause insulin resistance, obesity, diabetes and generation while protecting the heart.
- MG53 protects the heart with side effects such as insulin resistance, obesity, diabetes and metabolic syndrome.
- this application has carried out a lot of research work, the main purpose is to mutate the MG53 protein, hope not to cause insulin resistance, obesity, diabetes and metabolic syndrome. Under the premise of side effects, the mutant is retained to exercise the cardioprotective function, but without the corresponding side effects.
- the present invention provides a MG53 mutant which is one of the seven cysteines of the N-terminal RING domain of MG53 or two or more cysteines mutated to a non-polar amino acid. Mutant; the seven cysteines are at position 14, 17th, 29th, 34th, 37th, 53rd, 56th of the RING domain, respectively. Site.
- cysteines are important sites in the RING finger region of MG53, while the RING finger region is responsible for its E3 ligase activity, degradation of its substrate, and induction of insulin resistance, obesity, diabetes, and metabolic syndrome. The side effects are necessary, so the inventors chose these seven cysteines as research objects.
- the above-mentioned MG53 protein mutant provided by the present invention can protect the heart while avoiding side effects such as insulin resistance, obesity, diabetes and metabolic syndrome accompanying MG53, and the cardioprotective effect is not affected at all.
- the non-polar amino acid is alanine, glycine, valine, leucine, isoleucine, valine, phenylalanine, tryptophan, or methionine.
- the non-polar amino acids are alanine, glycine, -; valine, valine, valine and isoleucine.
- the non-polar amino acid is alanine.
- the MG53 mutant is selected from any one of MG53CMA, MG53C17A, MG53C29A, MG53C34A. MG53C37A, MG53C53A, and MG53C56A.
- the MG53 mutant of the present invention includes primates, rats and mice.
- the original wild sequence was selected as the NCBI number of mouse MG53 (TRIM72) mRNA: NM 001079932.3. Other sequences may be selected,
- the MG53 mutant provided by the present invention is a MG53 protein mutant, and the 14th position of the N-terminal RING ⁇ finger region of the mutation is alanine, that is, the N-terminal RING finger region of the MG53 protein.
- cystine is replaced by alanine, it is mutated to become the MG53 mutant of the present invention, and the cysteine is at the 14th position in the MG53 protein, and the alanine is also substituted at the 14 position, that is, the present invention.
- the MG53 mutant was MG53C14A.
- the present invention uses alanine as an example to illustrate the MG53 mutant, and it should be noted that: the cyst of the present invention
- the 3 ⁇ 4 acid mutation may be selected from not only A (alanine), but also any of the 8 non-polar amino acids, such as glycine, leucine, valine, proline or isoleucine. It also has the effect of exercising heart protection function under the premise of MG53 mutation without causing side effects such as insulin resistance, obesity, diabetes and metabolic syndrome.
- the mutation method of other non-polar amino acids is the same as that of ruthenium and valine, and will not be described herein.
- MG53 can act as a structural protein to promote the repair of cell membrane damage in skeletal muscle and myocardium, and also regulate intracellular vesicle transport and skeletal muscle cell regeneration; in addition, in MG53, MG53 is also mediated.
- the combination of Caveolin-3 and PI3K activates the reperfusion injury salvage kinase pathway (RISK pathway), which plays an important protective role in cardiac ischemic preconditioning.
- RISK pathway reperfusion injury salvage kinase pathway
- the inventors found that the MG53 protein is a RING domain (also called a RING finger region), a B-box domain, a Coiled-coil domain, and a SPRY structure which are recognized to have ⁇ 3 ligase activity. Domain composition. From the results of amino acid sequence analysis of MG53, only the RING domain is a recognized domain containing FJ ubiquitin ligase activity, and therefore, the inventors determined that the E3 ubiquitin ligase activity of MG53 is in RING.
- the first zinc-bonded cysteine in the zinc finger structure of the RING domain the tenth cysteine in the amino acid sequence of wild-type mouse MG53, which maintains the RING domain E3 ubiquitin ligase
- the key is.
- the inventors then constructed two mutants that may result in the inactivation of E3 ubiquitin ligase from MG53, one is the MG53 (ARING-MG53) lacking the RING domain, and the other is the fourteenth mutation of the amino acid sequence to the lactam. MG53 (C14A- MG53. 3 ⁇ 4 Comparing the effects of these two mutants with IF.
- MG53 on the ubiquitination of IRS1 it was found that only normal MG53 can effectively ubiquitinate insulin receptor (IR) and insulin receptor substrate 1 (IRS1), ARING Or C14A does not have this feature.
- IR insulin receptor
- IRS1 insulin receptor substrate 1
- MG53 The high expression of the muscle-specific protein MG53 is an important cause of the development of insulin resistance, obesity, diabetes and metabolic syndrome; second, the first time The overall level and cell level demonstrated that MG53 is an E3 ubiquitin ligase of IR and IRS1, which degrades skeletal muscle IR and IRS1 through the ubiquitin-proteasome pathway, which is essential for the body's insulin resistance, while at the same time causing the body's pancreas 3 ⁇ 4 resistance, further into obesity, diabetes and metabolic syndrome. Second: You can also re-do it to connect ideas.
- E3 is the only controllable component involved in protein ubiquitination.
- the combination of ubiquitin and target protein is not
- the former simultaneously binds to E2 and target eggs loaded with ubiquitin, and transfers ubiquitin directly to the target protein; the latter first transfers ubiquitin from E2 to a cysteine active site of the HECT domain, and then sulfate The ubiquitin is transferred to the target protein.
- Ubiquitin is composed of 76 3 ⁇ 4 acid groups.
- Ubiquitin-binding domains The role of the target proteins in Ubiquitin-binding domains (UBDs) is localized to the 26S proteasome, which is hydrolyzed by deubiquitination and unfolding, etc.
- Ubiquitin-binding domains Ubiquitin-binding domains
- the present invention supported by a number of experimental data, yielded a MG53 protein mutant which is either or both of the seven cysteines of the RING domain of the MG53 egg yolk. More than one mutant in which cysteine was replaced by alanine.
- the MG53 protein mutant is any one of MG53C14A, MG53C17A, MG53C29A, MG53C34A, MG53C37A.MG53C53A.MG53C56A, and the MG53 mutant selected in the present invention is MG53CUA.
- the present invention provides a method for mutating a MG53 egg yolk mutant, which is characterized in that the full-length sequence of the wild-type MG53 plasmid is subjected to site-directed mutagenesis to obtain the MG53 mutant.
- the kit ⁇ Beijing Mu-gene 3 ⁇ 4-j Easy Mutagenesis System.
- the above-described transformation method or mutation method is to mutate the full-length sequence of the wild MG53 plasmid by using the site-directed mutagenesis kit (Essue Mutagenesis System of Beijing Quangong) to obtain the cysteine at the 14th position.
- the MG53 mutation of the polar amino acid is a plasmid; when the non-polar 3 ⁇ 4 acid is a tyrosine, the MG53 protein mutant in which the 1'-cystine at position 14 is mutated to alanine is obtained, and the MG53 is white
- the mutant was MG53C14A.
- the modification method that is, the process of site-directed mutagenesis is:
- mutant plasmid wild type MG53 plasmid
- DNA polymerase DNA polymerase
- PCR amplification using a specific mutation primer
- the MG53 mutant plasmid was obtained by transfecting cells with ScreenFectA to obtain MG53 mutation.
- ScreenFectA (Compella) is a commercial kit, a kit A. ifi has all the reagents and methods used in this method.
- J box is Incella's ScreenFect® A transfection reagent and + ScreenFect Dilution Buffer.
- the overlapping K domain described in the above step (1) is preferably 20 bp.
- the 14th cysteine of the MG53 amino acid sequence is mutated into the base of the Flag-MG53 plasmid using the QuikChange II point mutation kit. Amino acid.
- the above mutation process is:
- a downstream primer for t comes with mutation site and the overlapping region of 18 ⁇ 27bp t
- mutated plasmid 200 ng as a template, a high-fidelity DNA polymerase was used, and a specific mutation primer was used for PCR amplification. The reaction product was identified on an agarose gel.
- the PCR reaction conditions are as follows:
- the PCR product is treated by Dpnl digestion reaction, and the reaction conditions are as follows: ': 10uL PC product is added to luL Dpnl,
- Transformation of E. coli competent cells TOP10 Melt the competent TOP10, add the treated PCR product, place it on ice for 30 minutes, heat for 42 seconds for 42 seconds, add LB, and incubate for 37 minutes at 37 °C. Ammonia-resistant LB flat plate.
- the method for modifying the MG53 protein mutant of the present invention can also be found in the commercially available Easy-Gold Company of Beijing.
- the instructions for the Mutagenesis System (kit) are described in detail for the mutation modification method and the procedure.
- the present invention also provides the use of the above MG53 mutant (i.e., MG53 protein mutant) for the preparation of a medicament for treating a disease associated with myocardial cell injury.
- the medicament for treating cardiomyocyte injury further comprises a medicament for treating/preventing a disease caused by cardiac ischemia and 3 ⁇ 4 perfusion injury; the above diseases further include myocardial cell defect, myocardial ischemia, Cardiac ischemia/reperfusion injury, myocardial infarction, heart failure, arrhythmia, heart rupture, etc.
- the present invention provides the use of MG53 mutant as MG53C14A, i.e., MG53C14A in the preparation of a medicament for treating cardiac damage or myocardial injury.
- MG53 or MG53C14A can protect against myocardial cell damage caused by hypoxia.
- the MG53 mutant referred to in this application refers to the MG53 mutein, or the MG53 mutant protein.
- insulin resistance is one of the fundamental pathogenic factors of various metabolic disorders such as obesity and type 2 diabetes. 11 Although skeletal muscle accounts for 70-90% of the sugar utilization caused by insulin stimulation, but people have a mechanism for muscle insulin resistance: little is known today. The following experimental part of the present invention first confirmed that in mice, the skeletal muscle-specific protein mit SUg urain53 (i.e., MG53 of the present invention) mediates insulin receptor (1R) and insulin receptor substrate 1 (IRS1). degradation. When MG53 is up-regulated, it causes metabolic synthesis characterized by insulin resistance, obesity, hypertension, and lipid metabolism disorders.
- MG53 acts as an E3 ligase, ubiquitinating insulin receptor (IR) and insulin receptor substrate 1 (IRS1), causing both to degrade through ubiquitin-dependent pathways, constituting the strength of insulin signaling in skeletal muscle.
- IR insulin receptor
- IRS1 insulin receptor substrate 1
- the metabolic syndrome includes a series of diseases such as insulin resistance, central obesity, lipid metabolism, and high blood. Incidence ratio: Increasing has become one of the major threats to human health. Metabolic syndrome makes the incidence of cardiovascular disease h-fold 2 times, and the incidence of type 2 diabetes is up to 5 times. Insulin resistance is the fundamental flash of many metabolic disorders including metabolic syndrome, obesity, and type 2 diabetes. I is 70-90% of the skeletal muscle in the insulin utilization of insulin stimulation, and insulin resistance in skeletal muscle may be the pathogenic mechanism of metabolic synthesis 3 ⁇ 4 ⁇ 2 type disease. Indeed; longitudinal studies provide evidence that skeletal muscle insulin resistance is the earliest step in the pathogenesis of metabolic syndrome and type 2 diabetes. i, little is known about the mechanisms behind skeletal muscle insulin resistance.
- MG53 knockout mice In order to determine the necessity of MG53 in the pathogenesis of metabolic syndrome, from 3 weeks after birth, the inventors began to follow-up monitoring of MG53 knockout (MG53-/-) mice and corresponding wild-type littermates in rouge. Diet (60% calories from fat) and changes in body weight and metabolic parameters in the case of normal diet. In 3-38 weeks, there was no significant change in body weight, blood k, serum cholesterol, and triglyceride in MG53 knockout mice under normal VR diet. However, in the absence of changes in serum insulin levels, MG53 knockout mice showed a significant reduction in blood glucose levels at 38w.
- MG53 knockout mice did not show any phenotype under the high-fat diet, but maintained normal licking and insulin levels, even after 30 weeks of high-fat diet, MG53 knockout mice did not appear wild.
- 3 ⁇ 4 Insulin resistance in mice (glycemic tolerance and insulin MG53 knockout small pancreatic morphological changes and insulin secretion are also H; 3 ⁇ 4d improvement.
- Hidden, knockout of MG53 protects mice from high-fat diet induces insulin Resistance and metabolic disorders, :: U: indicates that MG53 is a high-fat diet-induced insulin resistance and metabolic syndrome: a must.
- the intrinsic tyrosine-induced sea-radical activity of the insulin receptor causes the receptor's own tyrosine 15 i:1 phosphorylation.
- the insulin receptor substrate such as the insulin receptor substrate IRS1, insulin receptor substrate 2 RS2
- the downstream phosphoinositide-3-excited 3 ⁇ 4 is activated to stabilize the glucose of the skeletal muscle. state.
- the inventors examined signaling molecules that may be regulated by MG53 at the insulin receptor-IRS1-PI3K-Akt-GSK3p pathway. In G53-transgenic mice with insulin resistance and metabolic disorders, skeletal fistula!
- Islet-stimulated insulin receptor (beta subunit) and 1RS1 tyrosine phosphorylation, and Akt473 silicic acid phosphorylation was covered. At nj, these mouse bones were 3 ⁇ 4]' ⁇ , insulin receptors and insulin were less expressed in the egg yolk of the substrate 1, but their mRNA levels remained unchanged. 3 ⁇ 4 MG53 overexpressing ⁇ 3 ⁇ 4 effect 3 ⁇ 4 compensatory anti-M ⁇ ⁇ , transfection system, overexpressing MG53 gene - T. cultured C2C ⁇ 2 myotubes MG53 increased expression of 3.5 ⁇ 0.? Significantly reduced egg levels in the insulin receptor and IRS1, but their mR A levels were unchanged.
- Body weight of MG53 transgenic mice, and 38-week-old wild type and MG53-transfected W mice contracted 3 ⁇ 4 and diastolic ⁇ ⁇ ( ⁇ . Please awake, ti oil triester, serum islets and in fasting and eating state ⁇ Levels, . and 30) ( Fat diet 3 ⁇ 4 ⁇ and MG53 knockout mice with a 3 ⁇ 4 ⁇ 4 ⁇ tolerance test and insulin resistant 38! age wild and MG53 ⁇ W mouse pancreas, 38-week-old wild-type and MG53 transgenic mice, glucose t was injected intraperitoneally at 2 g/kg body weight), the concentration of serum insulin under stimuli, or the change in baseline-to-baseline ratio The experimental indicators and the number of statistics are counted.
- MG53 The expression of MG53 in wild-type mice fed with rouge diet was increased, and MG53 over-expressed, sputum skeletal muscle pancreas was severely inhibited, while IR and protein levels were decreased, and mR A levels were unchanged.
- IR and IRS1 are down-regulated in various Sichuan studies. If ⁇ J insulin resistance is a common phenomenon. It should be obese or type 2 diabetes animal model and human sample.: In his experiment Furthermore, even in the metabolic k-force caused by the high-fat diet, MG53 deletion can maintain the integrity of IR and IRS and systemic islet sensitivity. In particular, high-fat diets in MG53 knockout mice reduced the abundance of ⁇ and IRS1 by the high-fat diet, MG53 water
- MG53 knockout mouse pancreas W, 1R 1 3 ⁇ 4 prime cause, iRSK Akt phosphorylation and GSK3P will increase significantly. Therefore, MG53 t regulates the bone UR and IRS1 - tone that is essential for the rouge diet and metabolic diseases
- MG53-mediated skeletal muscle-specific insulin resistance developed into a systemic metabolic disorder.
- T 3 ⁇ 4 the inventors tracked the ff-type of MG53TG mice and the high-fat diet feeding sputum (multiple ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ Muscle and pancreas.
- '3 ⁇ 4 ⁇ arrived in Hangyuan J ⁇ -3 ⁇ 4 fl development of disorders (including obesity and polyps; 'insulin resistance'.
- Acidification and their total protein levels are relative to the GAPDH standard, 3 ⁇ 4 is 1;, ⁇ j'' wild z I ⁇ : multiple of the background.
- the representative western print id statistics are not narrow, 3 ⁇ 4 W from 6 or 38 weeks,! ⁇ '3 ⁇ 4 and VI G53 transgenic mouse skeletal muscle, liver, eagle) 3 ⁇ 4 Akt phosphorylation.
- 1RS1 is the node of IR and islet-like factor-I (the IGF-IR channel is a total of ⁇ , the person also returns IMG-1 letter was studied for muscles other than islet signals!
- MG53 lack of fire increases the dose-response effect of insulin-stimulated IRS] acid phosphorylation, which enhances the effect of iGF-I at beta concentrations, rather than low concentrations of 1GF-I.
- the MG53 contains a small classical E3 ubiquitination-linked RING finger domain (or Ri G ⁇ ' refers to the [domain, or ING domain) at the amino terminus, and the inventors suggest that MG53 may act as a muscle-specific E3 Generalization of the insulin receptor and IRS1 undergoes a broad-spectrum-dependent degradation. A variety of I are supporting this hypothesis. Fi first, immune co--: ';':: small - endogenous MG53 and insulin receptor, IRS] have physical interactions, and exogenous expression of MG53 and IR, IRS1 in HEK293 cells. The second is ubiquitination of IR and 1RS1 in MG5 TG mouse skeletal muscle spasm.
- sequence analysis predicted a cysteine-rich region in the RING K domain at the N-terminus of MG53, 3 ⁇ 41 ⁇ 27 half 1 ⁇ 2, 3 ⁇ 4, special!fc ⁇ cyst ( ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' ' '
- this MG53 mutant has neither the total egg A amount of P '3 ⁇ 41 nor the lR-IRSl-AKT-GS: ⁇ i, which is caused by the islet ⁇ : activation of i4 path: W this, --'t water armor', RING finger area is MG53 E3 ligase function must be ⁇ ⁇ ,.
- MG53 is well known as membrane repair and myocardial protection
- the inventors have a small MG53 in the movement of insulin resistance and metabolic disorders. '';Spoon
- MG53 The high expression of MG53 is used to initiate the whole body 1 ⁇ 2 island 3b4 and metabolism. MG53 as
- Heterologous ⁇ 3 ligase can cause ubiquitin-dependent degradation of IR and IRS, and becomes a decisive regulator of the 1' skeletal muscle signal, resulting in insulin signaling and metabolic defects.
- Acid is required for MG53 to exert the above-mentioned metabolic clearance. Mutation of cysteine in the RING ⁇ domain can cause loss of insulin resistance, obesity, and diabetes mellitus.
- MG53 transgenic mice Murine MG53-based full-length cDNA coding sequence was cloned into pUC-CAGGS female Xhol locus, regulated by chicken beta actin. After being linearized by Sail digestion and purified by gelation, this fragment was microinjected into the fertilized egg A of the mouse. PCR W to introduce the type > i!.
- Plasmid and adenoviral vector MG53 full ⁇ was amplified from mouse cDNA by PCR: column and MG sequence of R. J G domain (ARING), and inserted into p3XFIAG from two cleavage sites of Bglll and Xbal Expression vector of CMV-10 (to Sigma-Aldrich) +).
- the MG53 variant of C14A 14th, acid is replaced by lactamine is a strategy for the fast-point test
- the plasmid was transformed.
- the insulin receptor sequence was cloned from pBABE-bleo human ⁇ 3 ⁇ 4 ⁇ receptor B (to Addgene male 'd > and inserted into the pcDN iO'Myc-His B by Hindll and Xbal cleavage sites.
- Hugh H Invitrogen.
- Insulin Receptor Substrate] (IRS1) is derived from pBS-m IRS1 (with Invitrogen), ! V : (1 ⁇ 2 ⁇ , and inserted into pcDNA4/TOMyc by two cleavage sites: Hindlll and Notl -H;s B expression vector (from Invitrogen;).
- N-terminal HA-tagged ubiquitin and the C-terminal FLAG-containing pancreatic expression plasmid were provided by Dr. Chen and I. Leibiger, respectively.
- Adenosis 3/4d expressing GF and GFP-G53 is made in
- C2C12 myoblasts rice cell resource center, IB S, ':: ' 1 Academy of Sciences / China & I and Medical University '" Ding - 37 degrees Celsius with 5%: .
- the carbonized cell culture chamber was treated with Dulbecco's modified Eagle medium (DME ⁇ culture, supplemented with 10% fetal fetus lfn Tao (Sigma-Aldrich: ⁇ rfj), 0.11 g/L sodium pyruvate and 1 % ⁇ ?3 ⁇ 4 ⁇ -'; myoblasts at 90%, - / ⁇ . by adenovirus infection or plasmid transfection into ⁇ 1 ⁇ 2' ⁇ ! Introduction : Zfn, cells containing DMliM culture of blood stasis; :':i Cultured into a myotube for four days.
- DME ⁇ culture supplemented with 10% fetal fetus lfn Tao (Sigma-Aldrich: ⁇ r
- the method of cell hypoxia is to culture the cells in RPMI 1640/5% fetus 4 ⁇ [fi clear culture for 48 hours; ⁇ -, ' ⁇ change medium for serum-free and use 95% Gas and 5% ::.
- lT : .
- the cell's medium is replaced by 64 (V5% fetus ⁇ ⁇ ⁇ ⁇ , put / ": H degree incubator containing 5% carbon dioxide ⁇
- 3 ⁇ 4 ( ⁇ , cell culture solution and sputum reagent are mixed in a ratio of 1:1); 4 The sample is too lightly shaken 2 ⁇ ⁇ (This cell, te nutrient solution and sputum reagent lightly mixed); 5 After standing at room temperature for lOmin: 6 Sampling sample ⁇ ELISA plate, _ I: machine gun Luminesce' ⁇ For LDH concentration, use sea view Source Medical Devices Limited (LDH0360). J3 ⁇ 4 body experiment method: i LDH kit reagent, according to the ratio of reagent 2 and reagent 1 (1:5) completely mixed, 2-8 degrees to be kept in m; 2 add label sample 40ul / hole; 3 After mixing with the Ou!/well reagent. ⁇ : ⁇ Measure the absorbance at 340 nm.
- Co-immunoprecipitation lyophilized lysate (30 mM HEPES at pH 7.6, OO mM, 0.5 NP-40, and protease inhibitor mixture) lysed tissue or 3 ⁇ 4 cells, 4 C C 3 ⁇ 4 shake for 30 min ,
- Ubiquitination analysis C2C12 transfected with a specific plasmid.
- 3 ⁇ 4 ⁇ tube fine fl U lOmM Fl MCI 32 treatment 12 & H ⁇ ⁇ Rinse the cells with ice-cold phosphate buffer PBS, using R1PA lysate (200 ⁇ NaCl, pH 8) .C 2CmM Tris-Cl, ImM EDTA. ImM f3 ⁇ 4 EGI, 1% NP-40, 0.5% deoxy 3 ⁇ 4P.
- Blood ⁇ measurement systolic blood pressure and relaxation
- k is measured by - ⁇ ⁇ ' ⁇ ⁇ ⁇ Total knowledge of small ⁇ " -., Sichuan
- the system was heated to 37 degrees Celsius (Visitech BP-2000 Blood Analysis System).
- the adaptation of the device to the device was 7-10 days, after which it was tested for two cycles, and 10 animals were tested for a period of -: day ⁇ blood stable ⁇ .
- 2-NBDG uptake assay C2C12 myotubes with specific gene were transfected in DMEM without blood for 12 hours, then maintained in Krebs-Ringer phosphate buffer (128 mM NaC), 1.4 mM gas Calcium, 1.4 mM ! ⁇ :;; 3 ⁇ 4 of magnesium sulfate, 5.2 mM potassium chloride, 10 mM sodium phosphate 3 ⁇ 4 and 2 mM sodium propionate, pH 7.4) incubate at 37 ° C for 30 minutes Subsequently, 6''j, l, i were treated with O.luM insulin and 100 uM 2-NBDG (Invit-ogen) at 37 ° C.
- the cells were washed with ice-cold PBS buffer : ⁇ :, ⁇ ⁇ . 5% of the pancreas! 3 ⁇ 4 will be «digested b', draw ""; heart for 5 minutes, then resuspend fine fM with PBS, and finally use the FACSCalibur flow cytometer (BD) to measure 3 ⁇ 4 ⁇ of FL3.
- BD FACSCalibur flow cytometer
- mice After glucose tolerance 3 ⁇ 4, the mice were fasted overnight (16 hours) and then administrated with D-glucose (2 g / kg body weight). In the insulin tolerance test towel, small ⁇ random feeding and intraperitoneal injection of bovine islet ⁇ (OV J kgi ⁇ ⁇ , Si3 ⁇ 4n.a-Aldri h public ⁇ ]). In order to detect glucose-stimulated insulin release, mice were fasted for 16 hC to shoot D-grass ponds (2 / k collected before and after injection at different times': tail vein blood.
- bovine islet ⁇ OV J kgi ⁇ ⁇ , Si3 ⁇ 4n.a-Aldri h public ⁇
- mice were independently placed in a 12-hour light/dark environment.
- a comprehensive ft animal metabolic monitoring system (CLAMS; Columbus Instruments) was used to evaluate the mice's consumption for more than 72 hours.
- VOI ft animal metabolic monitoring system
- VC02 carbon dioxide production
- the formula for the juice can be: .815+: .232V02/VCO'2)> ⁇ V(.V2.
- the present invention also provides - an animal expression carrier, 3 ⁇ 4 load inserted: - MG53 3 ⁇ 4 body: ⁇ 3 ⁇ ⁇ :?
- the animal expression vector can be an adenovirus for the carrier - also " 1 " for pcD / "! / vc His B,
- the present invention also provides an animal cell transfected with the animal expression vector; the animal cell force C2C! 2 myotube cells.
- the present invention also provides the above-mentioned MG53 mutant in the treatment of various myocardial injury drugs; including in the repair of myocardial injury, pancreatic resistance, palpitations, diWi/rt irrigation injury, myocardial 3 ⁇ 43 ⁇ 4, heart failure , arrhythmia, heart rupture, ⁇ too day ⁇ ⁇ G5
- a drug for the treatment of insulin resistance, obesity, ftiW disease and metabolic diseases Preferably fi: use in the manufacture of the ⁇ ⁇ .
- the above-mentioned use means that the 3 ⁇ 4 variant is the use of MG53C.A, MG5 CA : preparation of heart K; And, the MG53 mutant is MG53C29A, and the above use is the use of MG53C29A in the preparation of a medicament for treating myocardial injury.
- the MG53 mutant is MG53C34A
- the use of the MG53C34A is in the preparation of a drug for treating myocardial injury.
- FIG. 1 MG53, MG53C14A and MG53 ARING both protect against myocardial cell damage caused by hypoxia.
- MG53, MG53C14A and MG53 ARING both protect against myocardial cell damage caused by hypoxia.
- cells containing (left; 1-1) and finely dehydrated guanidine lactate (LDH) U (right panel) were tested for hypoxia-induced overexpression of control vector (vector).
- LDH finely dehydrated guanidine lactate
- FIG. 1 MG53 knockout protects against metabolic diseases caused by high-fat diets.
- FIG. 3 MG53 knockout protects against insulin resistance caused by a high-fat diet.
- MG53 is able to interact with and iRSl and increase its ubiquitination.
- MG ⁇ RNG finger region deletion and C14A mutation in MG53 did not cause an increase in the ubiquitination of iR and 1RS1, and did not inhibit insulin signaling.
- MG53 In aC2C12 myotubes, overexpression of MG53 was detected by western Wots assay (Adv-MG53 can inhibit the phosphorylation of iR, IRS1 and Akt by insulin (Insulin), and reduce the total of IR HIRS1 by using proteasome inhibitors. --lac can be used to control the MG53.
- the side is the western blots of the 3 ⁇ 4 sex, the statistical data of the side data.
- FIG. 9 MG53C294 and both protect against damage to cardiomyocytes caused by hypoxia.
- the 3 ⁇ 4 variant does not cause the egg A of IRS1 to drop.
- mutant plasmid 200:3 ⁇ 4 for 3 ⁇ 43 ⁇ 4! Plates, which allow high-fidelity DNA to be aggregated and amplified by PCR with specific mutation primers.
- the reaction product was identified on an agar gel.
- the PCR reaction conditions are as follows:
- the PCR product was treated by Dpnl digestion reaction, and the reaction conditions were as follows: 10 uL of the PCR product was added to luL Dpnl and treated at 37 ° C overnight.
- Transformation of E. coli competent cells TOPI 0 Melt the competent TOPI 0, add 3 ⁇ 4 PCR product, incubate on ice for 30 minutes, heat at 42oC for 60 seconds, add LB, and incubate at 37oC for 45 minutes. Apply 3 ⁇ 4 (resistant LB plate. Incubate overnight at 37oC for 16 hours.
- the primer sequence is:
- the primer sequence is:
- Example 4 MG53 mutation ⁇ . MG53C34A.
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- MG53 mutant MG53C29Go Mutation process of MG53C29G: The primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- the primer sequence is:
- MG53 mutant MG53C14V.
- the primer sequence is:
- MG53 mutant MG53C14I.
- the primer sequence is: CI 41 primer 1:
- the primer sequence is:
- MG53 mutation MG53C17L.
- the primer sequence is:
- the primer sequence is:
- Example 21 MG53 Mutant Plasmid An MG53 mutant was obtained by transfecting cells with ScreenFectA. HEK293T cells were cultured in a 60 mm culture dish to a density of 90%. A large number of plasmids (Flag-MG53 or Flag-C14A MG53) were prepared and transfected with ScreenFectA (Incella). The specific steps are as follows:
- the cleavage sites were Kpnl and Xhol, and the MG53 full-length plasmid was used as a template.
- the two primers were used for PCR, and the reaction system was:
- reaction conditions are:
- the reaction product was double-digested with Kpnl/Xhol, and the pcDNA4/TO/myc-His B plasmid was also digested with two enzymes. deal with. After that, the DNA was separated by agarose gel, and the gel was recovered. The ligation reaction was carried out by using T4 ligase, and the ligation product was transformed into E. coli ToplO strain. Validated positive clones were sequenced using sequencing to verify correctness.
- Applicants constructed the dRING plasmid and expressed the protein from the N-terminal 58Ala, to the MG53 whole protein, and the Myc tag at the C-terminus.
- Example 23 Differences in the ability of different mutants and MG53 wild type to protect cardiomyocytes from hypoxia
- MG53C14A Three plasmids of MG53C14A, MG53C29A, and MG53C34A were constructed according to Examples 1, 3, and 4, and cardiomyocyte expression was performed according to Example 21, and intracellular ATP content and extracellular lactate dehydrogenase concentration were detected in an anoxic environment to detect hypoxia.
- Figure 9 Three plasmids of MG53C14A, MG53C29A, and MG53C34A were constructed according to Examples 1, 3, and 4, and cardiomyocyte expression was performed according to Example 21, and intracellular ATP content and extracellular lactate dehydrogenase concentration were detected in an anoxic environment to detect hypoxia.
- the method of hypoxia is to change the medium to serum-free RPMI1640 medium saturated with 95% nitrogen and 5% carbon dioxide after 48 hours of culture in ⁇ 640/5% fetal bovine serum.
- the cells were then placed in a sealed chamber (Ohmeda oxygen monitor, type 5120) filled with 95% nitrogen and 5% carbon dioxide at 37 degrees Celsius.
- the medium of the cells was changed to RPMI1640/5% fetal calf serum and placed in an incubator containing 5% carbon dioxide at 37 °C.
- the detection method of myocardial cell damage is as follows:
- Promega's CellTiter-Glo Luminescent Cell Viability Assay (Cat# G7571) was used. Specific experimental methods: 1 Take the CellTiter-Glo Substrate (1 tube) in the kit and mix it with CellTiter-Glo Buffer (1 tube). The reagent is returned to room temperature for use. 2 The cell sample is removed from the incubator and placed for recovery.
- C2C12 myoblasts were constructed according to Examples 1, 3, and 4 (Cell Cell Resource Center, 1BMS, Chinese Academy of Medical Sciences/HH Medical University). Cells with 5% carbon dioxide at 37 degrees Celsius In the incubator, cultured in Dulbecco's modified Eagle's medium (DMEM) supplemented with 10% fetal bovine serum (Sigma-Aldrich), 0.11 g/L sodium pyruvate and ⁇ ⁇ % green chain? Prime.
- DMEM Dulbecco's modified Eagle's medium
- fetal bovine serum Sigma-Aldrich
- C2C12 myoblasts (Call! 3 ⁇ 4 Cell Resource Center, Chinese Academy of Medical Sciences/ ⁇ W Union Medical University) placed at 37 degrees Celsius with 5% carbon dioxide Cell culture incubator, cultured in Dulbecco's modified Eagle's medium (DMEM), supplemented with 10% fetal bovine serum (S; ma-Aldri «: h), 0.1 lg/L sodium pyruvate and 1% Green 3 ⁇ 4 ⁇ -chain 3 ⁇ 4 ⁇ . •, '1 C2C12 myoblasts 90% dense. I am careful to introduce four plasmids by adenovirus infection or plasmid transfection. After that, the cells were cultured for 4 days in a culture containing 2% horse blood.
- Co-immunoprecipitation lysate tissue or cells with lysate (30 mM HEPES at pH 7.6, 100 mM sodium chloride, 0.5 NP-40, and protease inhibitor mixture), shake at 4 ° C for 30 min, The lysate is at 4. C, centrifuge at 103,000 rpm for 10 minutes, remove the precipitate, and the supernatant is total protein, and set aside.
- the protein A beads were washed with ice-cold 1XPBS, the beads were resuspended in PBS, centrifuged at 4000 rpm for 2 min, the supernatant was removed, and the supernatant was washed three times, the PBS was removed, and the total protein lysate and anti-IRS1 antibody were added at 0.5 ug, and the mixture was silenced at 4 ° C. Incubate for 4 hours.
- the precipitated beads were washed with ice-cold 1XPBS, washed 3 times, then beads were added to lXloading buffer, boiled at 100 ° C for 5 minutes, centrifuged at OOO rpm for 10 min, and the sputum was taken as a sample, and the protein was separated by SDS-PAGE. , Ipokawa anti-IRS1-PYlOO antibody was used for western blot analysis. All other proteins were subjected to immunoblot analysis using the corresponding specific antibodies.
- MG53C37A, MG53C53A, MG53C56A have protective effects on heart energy and can protect heartache.
- the increase of MG53 content can cause pancreas, obesity and sugar disease when protecting the heart, MG53 In the heart of the heart, it is accompanied by side effects such as insulin resistance, obesity, diabetes and metabolic syndrome.
- the cysteine, the 29th, 34th, 37th, 53rd, 56th cysteines of MG53, especially the 14th point of C is necessary for MG53 to cause insulin resistance, obesity and diabetes, That is to say, the cysteine at the above site, especially the MG53 mutant which is mutated at the 14th C (for example, MG53C 14A does not cause insulin resistance, obesity and diabetes, but still protects the damage of cardiomyocytes, ie, MG53 mutant (li ⁇ G53C 14A) can exercise heart protection without causing side effects such as pancreatic resistance, obesity and diabetes.
- the MG53 mutant of the present invention includes the MG53 mutant of the above examples, and the sequence of the species includes primates (e.g., human), large K, and small wood.
- the original wild type sequence is mouse MG53 ( The NCBI number of the TRIM72) mRNA: NM-001079932.3 and the other sequences may be selected from human: mRNA: NM-001008274.3 Corresponding acid sequence: NP_001008275.2 c ⁇ mRNA: NM 001077675.1 Corresponding amino acid sequence: NP 001071 143.1.
- Monkey: mRNA: XMJ) 011 12866.2 i should be ammonia 3 ⁇ 4 acid sequence: XP_001112866.1 and should not be limited - ⁇ ⁇ listed limit sequence, containing all the corresponding sequences of IG53 of the species involved.
- the MG53 mutant obtained based on the above sequence, the mutant mentioned in the present specification, that is, a mutant protein or a mutant egg.
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Priority Applications (8)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP14743392.4A EP2949664A4 (en) | 2013-01-25 | 2014-01-22 | MG53 MUTATION AND USE THEREOF |
| AU2014210329A AU2014210329A1 (en) | 2013-01-25 | 2014-01-22 | MG53 mutant and mutation method and use thereof |
| US14/758,133 US20150361146A1 (en) | 2013-01-25 | 2014-01-22 | MG53 Mutant, Methods of Mutation and Use Thereof |
| CA2896688A CA2896688A1 (en) | 2013-01-25 | 2014-01-22 | A mg53 mutant, methods of mutation and use thereof |
| RU2015130482A RU2015130482A (ru) | 2013-01-25 | 2014-01-22 | Mg53 мутант, способы его мутации и применение |
| SG11201505010XA SG11201505010XA (en) | 2013-01-25 | 2014-01-22 | Mg53 mutant and mutation method and use thereof |
| HK16105367.6A HK1217345A1 (zh) | 2013-01-25 | 2014-01-22 | 一种mg53突变体及其突变方法和应用 |
| JP2015554032A JP2016506919A (ja) | 2013-01-25 | 2014-01-22 | 一種のmg53ミュータント及び突然変異方法と応用 |
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| CN201310030960 | 2013-01-25 | ||
| CN201310030960.8 | 2013-01-25 |
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| WO2014114184A1 true WO2014114184A1 (zh) | 2014-07-31 |
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| PCT/CN2014/000078 Ceased WO2014114184A1 (zh) | 2013-01-25 | 2014-01-22 | 一种mg53突变体及其突变方法和应用 |
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| US (1) | US20150361146A1 (zh) |
| EP (1) | EP2949664A4 (zh) |
| JP (1) | JP2016506919A (zh) |
| CN (1) | CN103965342B (zh) |
| AU (1) | AU2014210329A1 (zh) |
| CA (1) | CA2896688A1 (zh) |
| HK (2) | HK1217345A1 (zh) |
| RU (1) | RU2015130482A (zh) |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN107987147A (zh) * | 2016-10-26 | 2018-05-04 | 王惠琴 | 一种mg53多聚体制备方法及其用途 |
| CN112940098A (zh) * | 2016-04-06 | 2021-06-11 | 牡丹江友搏药业有限责任公司 | 一种mg53突变体及其制备方法和应用 |
Families Citing this family (7)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN104877971B (zh) * | 2015-06-02 | 2018-03-30 | 汉恒生物科技(上海)有限公司 | 一种可以缓解小鼠心衰症状的携带mg53基因的腺相关病毒载体 |
| SG11201900459RA (en) | 2016-08-01 | 2019-02-27 | Univ Beijing | Mg53 mutants, methods of making the same, and uses thereof |
| CN107629123B (zh) * | 2017-09-07 | 2020-08-25 | 北京大学 | 一种抗mg53蛋白的纳米抗体及应用 |
| AU2019392087A1 (en) | 2018-12-07 | 2021-06-24 | Ohio State Innovation Foundation | Composition for and method of facilitating corneal tissue repair |
| EP3982999B1 (en) | 2019-06-17 | 2026-01-28 | Trim-Edicine, Inc. | Composition for and method of treating hepatic tissue injury |
| EP4720101A1 (en) * | 2023-05-26 | 2026-04-08 | Ohio State Innovation Foundation | Modified mg53 polypeptides and methods of use thereof |
| WO2024249316A1 (en) * | 2023-05-26 | 2024-12-05 | Ohio State Innovation Foundation | Recombinant trim72/mg53 polypeptides and methods of use thereof |
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|---|---|---|---|---|
| CN101797375A (zh) * | 2009-12-02 | 2010-08-11 | 北京大学 | Mg53蛋白预防和/或治疗心脏缺血/再灌损伤的用途 |
| CN101912617A (zh) * | 2010-07-29 | 2010-12-15 | 北京大学 | Mg53基因在治疗胰岛素抵抗和ⅱ型糖尿病及其相关病症中的应用 |
| WO2012135868A2 (en) * | 2011-03-31 | 2012-10-04 | University Of Medicine And Dentistry Of New Jersey | Compositions and methods for the treatment and prevention of cardiac ischemic injury |
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| EP2185174B1 (en) * | 2007-09-04 | 2016-03-16 | Korea University Industrial & Academic Collaborative Foundation | Use of trim72 as a target for muscle and heart enhancer |
| KR101413005B1 (ko) * | 2007-12-04 | 2014-07-02 | 유니버시티 오브 메디신 앤드 덴티스트리 오브 뉴 저지 | 세포막 재봉합을 조절하기 위한 조성물 및 방법 |
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| CN101797375A (zh) * | 2009-12-02 | 2010-08-11 | 北京大学 | Mg53蛋白预防和/或治疗心脏缺血/再灌损伤的用途 |
| CN101912617A (zh) * | 2010-07-29 | 2010-12-15 | 北京大学 | Mg53基因在治疗胰岛素抵抗和ⅱ型糖尿病及其相关病症中的应用 |
| WO2012135868A2 (en) * | 2011-03-31 | 2012-10-04 | University Of Medicine And Dentistry Of New Jersey | Compositions and methods for the treatment and prevention of cardiac ischemic injury |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
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| CN112940098A (zh) * | 2016-04-06 | 2021-06-11 | 牡丹江友搏药业有限责任公司 | 一种mg53突变体及其制备方法和应用 |
| CN107987147A (zh) * | 2016-10-26 | 2018-05-04 | 王惠琴 | 一种mg53多聚体制备方法及其用途 |
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| CA2896688A1 (en) | 2014-07-31 |
| CN103965342A (zh) | 2014-08-06 |
| RU2015130482A (ru) | 2017-03-03 |
| CN103965342B (zh) | 2015-06-10 |
| HK1217345A1 (zh) | 2017-01-06 |
| EP2949664A1 (en) | 2015-12-02 |
| JP2016506919A (ja) | 2016-03-07 |
| EP2949664A4 (en) | 2016-06-22 |
| AU2014210329A1 (en) | 2015-07-23 |
| US20150361146A1 (en) | 2015-12-17 |
| HK1200841A1 (zh) | 2015-08-14 |
| SG11201505010XA (en) | 2015-08-28 |
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