EP2661495A1 - Fusion of peptidoglycan hydrolase enzymes to a protein transduction domain allows eradication of both extracellular and intracellular gram positive pathogens - Google Patents
Fusion of peptidoglycan hydrolase enzymes to a protein transduction domain allows eradication of both extracellular and intracellular gram positive pathogensInfo
- Publication number
- EP2661495A1 EP2661495A1 EP11854973.2A EP11854973A EP2661495A1 EP 2661495 A1 EP2661495 A1 EP 2661495A1 EP 11854973 A EP11854973 A EP 11854973A EP 2661495 A1 EP2661495 A1 EP 2661495A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- lysostaphin
- protein
- aureus
- nucleic acid
- ptd
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Classifications
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N9/00—Enzymes; Proenzymes; Compositions thereof; Processes for preparing, activating, inhibiting, separating or purifying enzymes
- C12N9/14—Hydrolases (3)
- C12N9/48—Hydrolases (3) acting on peptide bonds (3.4)
- C12N9/50—Proteinases, e.g. Endopeptidases (3.4.21-3.4.25)
- C12N9/52—Proteinases, e.g. Endopeptidases (3.4.21-3.4.25) derived from bacteria or Archaea
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Y—ENZYMES
- C12Y304/00—Hydrolases acting on peptide bonds, i.e. peptidases (3.4)
- C12Y304/13—Dipeptidases (3.4.13)
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12Y—ENZYMES
- C12Y304/00—Hydrolases acting on peptide bonds, i.e. peptidases (3.4)
- C12Y304/24—Metalloendopeptidases (3.4.24)
- C12Y304/24075—Lysostaphin (3.4.24.75)
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K38/00—Medicinal preparations containing peptides
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07K—PEPTIDES
- C07K2319/00—Fusion polypeptide
- C07K2319/01—Fusion polypeptide containing a localisation/targetting motif
- C07K2319/10—Fusion polypeptide containing a localisation/targetting motif containing a tag for extracellular membrane crossing, e.g. TAT or VP22
Definitions
- This invention relates to a pathogen-specific fusion protein comprising a peptidoglycan hydrolase, lysostaphin, and a protein transduction domain.
- the lysostaphin specifically degrades the peptidoglycan cell wall of S. aureus including methicillin-resistant Staphylococcus aureus (MRSA).
- MRSA methicillin-resistant Staphylococcus aureus
- fusion of a protein transduction domain to a peptidoglycan hydrolase enzyme allows delivery of such protein antimicrobials to the intracellular locations of persistent pathogens.
- These staphylococcal antimicrobials have both extracellular and intracellular activity. They can be used to treat chronic staphylococcal mastitis, and any disease caused by intracellular S. aureus (e.g MRSA osteomyelitis).
- Bovine intramammary infections are caused primarily by bacterial pathogens. S. aureus is transmitted from cow to cow usually during milking through
- S. aureus Upon entry into the mammary gland, S. aureus interacts with either epithelial cells or phagocytic immune cells which leads to its internalization. S. aureus exhibits very active intracellular replication often with the induction of small colony variants.
- the small colony variants are phenotypically very different from the parent strain.
- Peptidoglycan is the major structural component of the bacterial cell wall. Autolytic peptidoglycan hydrolases alter the peptidoglycan allowing bacteria to grow and divide. Bacteriophage (viruses that infect bacteria) use peptidoglycan hydrolases (endolysins) to degrade the cell wall allowing nascent phage to escape during the phage lytic cycle.
- Peptidoglycan is unique to bacteria and has a complex structure with a sugar backbone of alternating units of N-acetyl glucosamine (NGIu) and N-acetylmuramic acid (NMur). Each NMur residue is amide-linked to a short pentapeptide chain.
- Characteristic of S. aureus is the pentaglycine bridge that connects the L-Lys of the stem peptide to the D-Ala at position 4 of a neighboring subunit ( Figure 1 ).
- Peptidoglycan hydrolases have evolved a modular design with lytic (-100-200 amino acids), and SH3b cell wall binding domains (-40-60 amino acids) to deal with this complexity (Loessner et. al. 2005. Curr. Opin. Microbiol. 8: 480-487). Bacteria use autolysins to modify their peptidoglycan to allow the cell to grow and divide.
- Chimeric peptidoglycan hydrolases have been created by the exchange of cell wall binding domains (Croux et al. 1993. Mol. Microbiol. 9: 1019-1025). Enzymatic activity was retained and regulatory properties exchanged when the cell wall binding domains were swapped. Intra-generic chimeric fusion lysins are also functional (Diaz et al. 1990. Proc. Natl. Acad. Sci. USA 87: 8125-8129; Donovan et al. 2006. Appl. Environ. Microbiol. 72: 2988-2996).
- Lysostaphin is a bacteriocin secreted by S. simulans that lyses S. aureus (Browder et al. 1965. Biochem. BioPhys. Res. Comm. 19: 383-389).
- the endopeptidase activity is specific to the glycyl-glycine bonds of the staphylococcal peptidoglycan inter-peptide bridge ( Figure 1 ). It is known that lysostaphin can kill planktonic S. aureus (Walencka et al. 2005. Pol. J. Microbiol. 54:191 -200; Wu et al. 2003.
- Lysostaphin and other peptidoglycan hydrolases can cure mastitis and other infections and do not raise an adverse immune response. Lysostaphin has been used to treat bovine mastitis (Oldham and Daley. 1991. J. Dairy Sci. 74: 4175-4182). Repeated 100 ⁇ g IM doses in PBS during lactation were deemed sufficient and effectively cleared the milk of S. aureus, with no deleterious effects. This treatment cured 20 percent of the cattle while approximately 50 percent were cured with antibiotic treatments. Nonetheless, many treated quarters relapsed after treatment with either lysostaphin or antibiotic treatments ceased. The authors believed this was due to chronic intracellular infections.
- Lysostaphin at 10 ⁇ g/ml was sufficient to protect the transgenic dairy cattle from the S. aureus challenge.
- higher levels of lysostaphin are expected to be required as a dry cow intramammary treatment than as a transgene due to reports that less transgene expression (human lysozyme) is required to afford the same level of protection in milk than would be required if added exogenously (Maga et al. 2006. Foodborne. Pathog. Dis. 3: 384-392).
- Streptococcus pneumoniae slowed, but did not block, in vivo killing of the target microbe in mouse models (Fischetti, V. A. 2005. Trends Microbiol 3: 491-496;
- Staphylococcus simulans produces lysostaphin and avoids its lytic action by the product of the lysostaphin immunity factor ⁇ lif) gene the same as the lysostaphin endopeptidase resistance (epr) gene (DeHart ei al. 1995. Appl. Environ. Microbiol. 61 : 1475-1479) that resides on a native plasmid (pACK1 ) (Thumm ei al. 1997. Mol. Microbiol. 23: 1251 -1265).
- the lif gene product inserts serine residues into the peptidoglycan cross bridge, interfering with the ability of the glycyl-glycine
- mutants when examined in vivo and in vitro, were five-fold less virulent than their non-resistant counterparts.
- the mutant peptidoglycan rendered the mutants much more susceptible to and were readily curable with ⁇ -lactam antibiotics
- Bacteria in biofilms can be orders of magnitude more resistant to antibiotic treatment than their planktonic (liquid culture) counterparts (Amorena et al. 1999. J. Antimicrob. Chemother. 44: 43- 55; Davies, D. 2003. Nat. Rev. Drug Discov. 2: 1 14-122).
- Biofilms also show heightened resistance to host defense mechanisms, such as, reduced activation of complement compared to planktonic cultures. Further, the aggregation of bacteria makes them less susceptible to phagocytosis (Cerca et al. 2005. J. Antimicrob. Chemother. 56: 331 -336). Sub-inhibitory antibiotic
- Protein transduction domains facilitate translocation of full length proteins across the plasma membrane. Short amino acid sequences (13-20 residues) within eukaryotic proteins have been identified that can facilitate the movement of full length mature proteins into the cytoplasm from outside the cell. Some protein transduction domains (PTDs) or cell penetrating peptides (CPPs) are briefly described in Table 1 (Kabouridis, P.S. 2003. Trends Biotechnol. 21 : 498-503).
- Synthetic PTDs have also been created, e.g., poly R or L.
- the exact translocation mechanism for each construct is believed to rely on both the cell type being transduced, the domain type being utilized, and the size of the transduced fusion, with the literature reporting examples of both energy dependent and non-energy dependent, pinocytotic and non-pinocytotic mechanisms (Kabouridis, supra; Fotin-Mleczek et al. 2005. Curr. Pharm. Des. 1 1 : 3613-3628).
- the translocation mechanism likely depends in part on ionic interactions between the basic groups of the amino acid side chains of the PTDs and negative charges associated with the plasma membrane.
- HIV -1 TAT 47-57
- Transportan (Chimeric GWTLNSAGYLLGKINLKALAALAKKIL gelatin/mastoparan)
- S. aureus has a high negative impact worldwide as both an extracellular and intracellular multi-drug resistant pathogen for humans, e.g., MRSA, and as an organism responsible for causing multiple animal diseases, e.g. mastitis, an infection of dairy cattle mammary glands.
- pathogen-specific agents which have extracellular and intracellular activity as an approach for control of chronic staphylococcal mastitis, intracellular MRSA, and other gram positive pathogens.
- a fusion polypeptide comprising lysostaphin, a protein that specifically digests the peptidoglycan cell wall and lyses live, untreated S. aureus, and a protein transduction domain (PTD), which facilitates translocation of full length proteins across the eukaryotic cell plasma membrane into the eukaryotic cytoplasm from outside the cell, can be used as an effective antimicrobial treatment for both extracellular and intracellular infections caused by S. aureus, by multidrug-resistant staphylococci, and other gram positive pathogens.
- PTD protein transduction domain
- a fusion protein comprising lysostaphin and a PTD.
- An added object of the invention is to provide a lysostaphin-PTD fusion polypeptide according to the invention, which allows both extracellular and intracellular Staphylococcus-induced disease and infection to be treated, including those caused by MRSA.
- An added object of the invention is to provide PTD-containing fusion proteins useful for the treatment of diseases and infections caused by intracellular ⁇ located bacteria for which lysostaphin is specific.
- kits comprising a lysostaphin-PTD fusion protein for treatment of chronic disease caused by extracellular and intracellular S. aureus, MRSA, and other Gram positive pathogens.
- Figure 1 depicts peptidoglycan structure and sites of hydrolase cleavage.
- S. aureus peptidoglycan is depicted with the generic cut sites for amidases and lysozyme-like glycosidases.
- Glucosaminidase and muramidase are examples of glycosidases that cleave between N-acetyl glucosamine (NGIu) and N-acetyl muramic acid (NMur).
- Amidases cleave between the NMur and the first amino acid of the peptide.
- the cut sites for LysK and lysostaphin have been determined, and are noted.
- Gram positive cell walls can have 40 layers of this sugar-protein structure.
- Figure 2A depicts an SDS PAGE and reveals a pure Lyso-PTD nickel column-purified protein with the expected MW of 29.5 kDa.
- Figure 2B depicts a representative Minimum Inhibitory Concentration (MIC; the lowest concentration of lysin that prevents growth in 20 hrs) assay of Lyso-PTD on S. aureus strain
- Figures 3 depict the staphylolytic activity of Lysostaphin-PTD fusion on internalized S. aureus in media (Figure 3A) and milk (Figure 3B).
- Bovine mammary epithelial cells (MAC-T) were cocultured with S. aureus Newbould 305 for 1 h at 37°C. After incubation, monolayers were washed 3X with PBS (pH 7.4) and incubated with lysostaphin (5 ⁇ g/ml Sigma) for 1 h at 37°C to kill extracellular S. aureus.
- Figure 4 depicts the killing of intracellular S. aureus in primary murine osteoblasts by Lyso-PTD.
- Figure 5 shows that Lyso-PTD can kill intracellular S. aureus in human brain endothelium cells.
- Figure 6 shows that Lyso-PTD can kill intracellular S. aureus in human brain endothelium cells - same protocol but different concentrations as Figure 5.
- Figure 7 depicts the killing of intracellular S. aureus in human keratinocytes (haCat) by Lyso-PTD.
- S. aureus has a high negative impact worldwide as both an extracellular and intracellular multi-drug resistant pathogen for humans, e.g., MRSA, and as an organism responsible for causing multiple animal diseases, e.g. mastitis, an infection of dairy cattle mammary glands.
- MRSA Multi-drug- and methicillin-resistant Staphylococcus aureus
- Bovine mastitis is another disease, where the pathogen invades mammary epithelial cells and immune cells (e.g., macrophages, polymorphonuclear neutrophilic leukocytes [PMNs]), or ventilator associated pneumonia where S.
- aureus can also invade immune cells (e.g., lung macrophages).
- Staphylococcal pathogens, S. aureus and CoNS account for up to 40% of the bovine mastitis in the USA.
- Most S. atvretvs-infected cattle are culled, due to the highly contagious nature of these infections, creating an additional burden on the dairy industry.
- An effective treatment for intracellular staphylococcal infections would be of significant economic benefit to both human health and the dairy industry worldwide.
- Peptidoglycan hydrolases have the added advantage that they often show near-species specificity in their peptidoglycan substrate.
- Lysostaphin is known to be highly specific to S. aureus. The lysins rarely target unrelated species, further reducing the risk of resistance development in non-targeted commensal strains, as often occurs with broad-spectrum antibiotics.
- This invention expands on the staphylolytic properties of lysostaphin by adding a -13 amino acid protein transduction domain (PTD) from the HIV-TAT protein.
- PTD -13 amino acid protein transduction domain
- Lysostaphin is a peptidoglycan hydrolase bacteriocin secreted by S. simulans that digests the peptidoglycan pentaglycine bridge of S. aureus
- TAT-Lysostaphin SEQ ID NO:2
- 5 ug TAT-Lysostaphin
- the control sample was only treated with extracellular lysostaphin and indicates that there were initially over 3.5 x 10 5 intracellular S.
- TAT-Lysostaphin fusion can also kill extracellular S. aureus
- intracellular S. aureus was extracted from infected MAC-T cells and cultured in Todd-Hewitt broth (rich media). At mid log phase of growth, the bacterial culture was exposed to various concentrations of TAT-Lysostaphin. In Figure 3, only 6 ug for a 1 hour exposure is required for the TAT-Lysostaphin fusion protein to kill 10 8 S. aureus from broth cultures.
- Staphylococci cause up to 40% of the bovine mastitis in the USA. Most can become chronic when they invade and reside intracellular ⁇ . We anticipate that through the use of PTDs, we have an antimicrobial with the potential to cure 40% of the bovine mastitis in the US, including chronic infections. Currently, there are no treatments for intracellular staphylococcal infections, once infected chronically, the cattle are routinely culled from the herd as a means to protect the remainder of the herd from this highly contagious pathogen.
- S. aureus colonization of human skin by S. aureus is a characteristic feature of several inflammatory skin diseases, which is often followed by tissue invasion and severe cell damage (Mempel et al. 2002. Br. J. Dermatol. 146: 943-951 ).
- the presence of intracellular S. aureus small colony variants in keratinocytes protect against host defenses and antibiotic therapy, thus contributing to prolonged skin infections (von Eiff ei a/. 2001 . Clin. Infect Dis. 32: 1643-1647).
- Endothelial cells are yet another cell type targeted by invading intracellular S. aureus (Sinha and Herrmann. 2005. Thromb. Haemost. 94: 266-277).
- peptidoglycan hydrolases that degrade other species can be similarly engineered to target other extracellular and intracellular gram positive pathogens e.g. Ply500 or Ply1 18 for Listeria monocytogenes.
- nucleic acid molecule refers to nucleic acid sequences and the like.
- a polynucleotide may be a polymer of RNA or DNA that is single-or double-stranded and that optionally contains synthetic, non-natural or altered nucleotide bases.
- a polynucleotide in the form of a polymer of DNA may be comprised of one or more segments of cDNA, genomic DNA, synthetic DNA, or mixtures thereof. This will also include a DNA sequence for which the codons encoding the lysostaphin-PTD according to the invention will have been optimized according to the host organism in which it will be expressed, these optimization methods being well known to those skilled in the art.
- isolated polynucleotide refers to a polynucleotide that is substantially free from other nucleic acid sequences, such as other chromosomal and extrachromosomal DNA and RNA, that normally accompany or interact with it as found in its naturally occurring environment.
- isolated polynucleotides may contain polynucleotide sequences which may have originally existed as
- Isolated polynucleotides may be purified from a host cell in which they naturally occur. Conventional nucleic acid purification methods known to skilled artisans may be used to obtain isolated polynucleotides. The term also embraces recombinant polynucleotides and chemically synthesized polynucleotides.
- construct refers to a recombinant nucleic acid, generally recombinant DNA, that has been generated for the purpose of the expression of a specific nucleotide sequence(s), or is to be used in the construction of other recombinant nucleotide sequences.
- a “construct” or “chimeric gene construct” refers to a nucleic acid sequence encoding a protein, operably linked to a promoter and/or other regulatory sequences.
- operably linked refers to the association of two or more nucleic acid fragments on a single nucleic acid fragment so that the function of one is affected by the other.
- a promoter is operably linked with a coding sequence when it is capable of affecting the expression of that coding sequence (i.e., that the coding sequence is under the transcriptional control of the promoter) or a DNA sequence and a regulatory sequence(s) are connected in such a way as to permit gene expression when the appropriate molecules (e.g., transcriptional activator proteins) are bound to the regulatory sequence(s).
- regulatory sequences refer to nucleotide sequences located upstream (5' non-coding sequences), within, or downstream (3' non-coding sequences) of a coding sequence, and which influence the transcription, RNA processing or stability, or translation of the associated coding sequence.
- Promoter refers to a nucleotide sequence capable of controlling the expression of a coding sequence or functional RNA.
- a coding sequence is located 3' to a promoter sequence.
- the promoter sequence consists of proximal and more distal upstream elements, the latter elements often referred to as enhancers.
- an “enhancer” is a nucleotide sequence that can stimulate promoter activity and may be an innate element of the promoter or a heterologous element inserted to enhance the level or tissue-specificity of a promoter.
- cDNA refers to all nucleic acids that share the arrangement of sequence elements found in native mature mRNA species, where sequence elements are exons and 3' and 5' non-coding regions. Normally mRNA species have contiguous exons, with the intervening introns removed by nuclear RNA splicing, to create a continuous open reading frame encoding the protein. "cDNA” refers to a
- DNA that is complementary to and derived from an mRNA template is complementary to and derived from an mRNA template.
- recombinant refers to a nucleic acid molecule which has been obtained by manipulation of genetic material using restriction enzymes, ligases, and similar genetic engineering techniques as described by, for example, Sambrook et al. 1989. Molecular Cloning: A Laboratory Manual, Second Edition, Cold Spring
- nucleic acid comprises the requisite information to guide translation of the nucleotide sequence into a specified protein.
- the information by which a protein is encoded is specified by the use of codons.
- a nucleic acid encoding a protein may comprise non-translated sequences (e.g. , introns) within translated regions of the nucleic acid or may lack such intervening non-translated sequences (e.g., as in cDNA).
- a “protein” or “polypeptide” is a chain of amino acids arranged in a specific order determined by the coding sequence in a polynucleotide encoding the polypeptide. Each protein or polypeptide has a unique function.
- the invention includes functional lysostaphin, lysostaphin-PTD, and lysostaphin-His polypeptides and functional fragments thereof, as well as mutants and variants having the same biological function or activity.
- the terms “functional fragment”, “mutant” and “variant” refers to a polypeptide which possesses biological function or activity identified through a defined functional assay and associated with a particular biologic, morphologic, or phenotypic alteration in the cell.
- the term “functional fragments of lysostaphin” refers to all fragments of lysostaphin that retain lysostaphin activity and function to lyse staphylococcal bacteria.
- Modifications of the primary amino acid sequence of lysostaphin may result in further mutant or variant proteins having substantially equivalent activity to the lysostaphin polypeptides described herein. Such modifications may be deliberate, as by site-directed mutagenesis, or may occur by spontaneous changes in amino acid sequences where these changes produce modified polypeptides having substantially equivalent activity to the lysostaphin polypeptide. Any polypeptides produced by minor modifications of the lysostaphin primary amino acid sequence are included herein as long as the biological activity of lysostaphin is present; e.g., having a role in pathways leading to lysis of staphylococcal bacteria.
- substantially similar refers to nucleic acid fragments wherein changes in one or more nucleotide bases results in substitution of one or more amino acids, but do not affect the functional properties of the polypeptide encoded by the nucleotide sequence.
- substantially similar also refers to modifications of the nucleic acid fragments of the instant invention such as deletion or insertion of nucleotides that do not substantially affect the functional properties of the resulting transcript. It is therefore understood that the invention encompasses more than the specific exemplary nucleotide or amino acid sequences and includes functional equivalents thereof.
- a codon for the amino acid alanine, a hydrophobic amino acid may be substituted by a codon encoding another less hydrophobic residue, such as glycine, or a more hydrophobic residue, such as valine, leucine, or isoleucine.
- a codon encoding another less hydrophobic residue such as glycine
- a more hydrophobic residue such as valine, leucine, or isoleucine.
- changes which result in substitution of one negatively charged residue for another such as aspartic acid for glutamic acid, or one positively charged residue for another, such as lysine for arginine, can also be expected to produce a functionally equivalent product.
- nucleic acid fragments may also be any nucleic acid fragment.
- substantially similar nucleic acid fragments may also be any nucleic acid fragment.
- Substantially similar nucleic acid fragments of the instant invention may also be characterized by the percent identity of the amino acid sequences that they encode to the amino acid sequences disclosed herein, as determined by algorithms commonly employed by those skilled in this art. Methods of alignment of sequences for comparison are well known in the art. Thus, the determination of percent identity between any two sequences can be accomplished using a mathematical algorithm. Non-limiting examples of such mathematical algorithms are the algorithm of Myers and Miller (1988. CABIOS 4:1 1 -17), the local homology algorithm of Smith et al. (1981 . Adv. Appl. Math. 2:482); the homology alignment algorithm of Needleman and Wunsch (1970. J. Mol. Biol.
- Computer implementations of these mathematical algorithms can be utilized for comparison of sequences to determine sequence identity. Such implementations include, but are not limited to: CLUSTAL in the PC/Gene program (available from Intelligenetics, Mountain View, Calif.); the ALIGN program (Version 2.0) and GAP, BESTFIT, BLAST, FASTA, and TFASTA in the Wisconsin Genetics Software Package, Version 8 (available from Genetics Computer Group (GCG), 575 Science Drive, Madison, Wis., USA). Alignments using these programs can be performed using the default parameters.
- sequence identity or “identity” in the context of two nucleic acid or polypeptide sequences makes reference to the residues in the two sequences that are the same when aligned for maximum correspondence over a specified comparison window.
- percentage of sequence identity is used in reference to proteins, it is recognized that residue positions which are not identical often differ by conservative amino acid substitutions, where amino acid residues are substituted for other amino acid residues with similar chemical properties (e.g. , charge or hydrophobicity) and therefore do not change the functional properties of the molecule.
- percentage of sequence identity means the value determined by comparing two optimally aligned sequences over a comparison window, wherein the portion of the polynucleotide sequence in the comparison window may comprise additions or deletions (i.e. , gaps) as compared to the reference sequence (which does not comprise additions or deletions) for optimal alignment of the two sequences. The percentage is calculated by determining the number of positions at which the identical nucleic acid base or amino acid residue occurs in both sequences to yield the number of matched positions, dividing the number of matched positions by the total number of positions in the window of comparison, and multiplying the result by 100 to yield the percentage of sequence identity.
- reference sequence is a defined sequence used as a basis for sequence comparison.
- a reference sequence may be a subset or the entirety of a specified sequence; for example, as a segment of a full-length cDNA or gene sequence, or the complete cDNA or gene sequence.
- polynucleotide sequences means that a polynucleotide comprises a sequence that has at least 80% sequence identity, preferably at least 85%, more preferably at least 90%, most preferably at least 95% sequence identity compared to a reference sequence using one of the alignment programs described using standard parameters.
- sequence identity preferably at least 85%, more preferably at least 90%, most preferably at least 95% sequence identity compared to a reference sequence using one of the alignment programs described using standard parameters.
- Substantial identity of amino acid sequences for these purposes normally means sequence identity of at least 80%, preferably at least 85%, more preferably at least 90%, and most preferably at least 95%.
- optimal alignment is conducted using the homology alignment algorithm of Needleman et at. (1970. J. Mol. Biol. 48:443).
- a "substantial portion" of an amino acid or nucleotide sequence comprises an amino acid or a nucleotide sequence that is sufficient to afford putative identification of the protein or gene that the amino acid or nucleotide sequence comprises.
- Amino acid and nucleotide sequences can be evaluated either manually by one skilled in the art, or by using computer-based sequence comparison and identification tools that employ algorithms such as BLAST. In general, a sequence of ten or more contiguous amino acids or thirty or more contiguous nucleotides is necessary in order to putatively identify a polypeptide or nucleic acid sequence as homologous to a known protein or gene.
- gene-specific oligonucleotide probes comprising 30 or more contiguous nucleotides may be used in sequence-dependent methods of gene identification and isolation.
- short oligonucleotides of 12 or more nucleotides may be use as amplification primers in PCR in order to obtain a particular nucleic acid fragment comprising the primers.
- a "substantial portion" of a nucleotide sequence comprises a nucleotide sequence that will afford specific identification and/or isolation of a nucleic acid fragment comprising the sequence.
- the instant specification teaches amino acid and nucleotide sequences encoding polypeptides that comprise a particular plant protein.
- Fragments and variants of the disclosed nucleotide sequences and proteins encoded thereby are also encompassed by the present invention.
- fragment a portion of the nucleotide sequence or a portion of the amino acid sequence and hence protein encoded thereby is intended.
- Fragments of a nucleotide sequence may encode protein fragments that retain the biological activity of the native protein and hence have lysostaphin-, lysostaphin-PTD-, or lysostaphin-his -like activity.
- fragments of a nucleotide sequence that are useful as hybridization probes may not encode fragment proteins retaining biological activity.
- variants substantially similar sequences are intended.
- conservative variants include those sequences that, because of the degeneracy of the genetic code, encode the amino acid sequence of one of the lysostaphin, lysostaphin-PTD, or lysostaphin-his polypeptides of the invention.
- Naturally occurring allelic variants such as these can be identified with the use of well-known molecular biology techniques, as, for example, with polymerase chain reaction (PCR), a technique used for the amplification of specific DNA segments.
- PCR polymerase chain reaction
- variants of a particular nucleotide sequence of the invention will have generally at least about 90%, preferably at least about 95% and more preferably at least about 98% sequence identity to that particular nucleotide sequence as determined by sequence alignment programs described elsewhere herein.
- variant protein a protein derived from the native protein by deletion (so- called truncation) or addition of one or more amino acids to the N-terminal and/or C- terminal end of the native protein; deletion or addition of one or more amino acids at one or more sites in the native protein; or substitution of one or more amino acids at one or more sites in the native protein is intended.
- variant proteins encompassed by the present invention are biologically active, that is they possess the desired biological activity, that is, lysostaphin, lysostaphin-PTD, or lysostaphin-his activity as described herein. Such variants may result from, for example, genetic polymorphism or from human manipulation.
- Biologically active variants of a native lysostaphin protein of the invention will have at least about 90%, preferably at least about 95%, and more preferably at least about 98% sequence identity to the amino acid sequence for the native protein as determined by sequence alignment programs described elsewhere herein.
- a biologically active variant of a protein of the invention may differ from that protein by as few as 1 -15 amino acid residues, or even 1 amino acid residue.
- polypeptides of the invention may be altered in various ways including amino acid substitutions, deletions, truncations, and insertions. Novel proteins having properties of interest may be created by combining elements and fragments of proteins of the present invention, as well as with other proteins. Methods for such manipulations are generally known in the art.
- the genes and nucleotide sequences of the invention include both the naturally occurring sequences as well as mutant forms.
- the proteins of the invention encompass naturally occurring proteins as well as variations and modified forms thereof. Such variants will continue to possess the desired lysostaphin, lysostaphin-PTD, or lysostaphin-his activity.
- the mutations that will be made in the DNA encoding the variant must not place the sequence out of reading frame and preferably will not create
- compositions of the invention comprise the antimicrobial composition of the invention dissolved or suspended in an aqueous carrier or medium.
- the composition may further generally comprise an acidulant or admixture, a rheology modifier or admixture, a film-forming agent or admixture, a buffer system, a hydrotrope or admixture, an emollient or admixture, a surfactant or surfactant admixture, a chromophore or colorant, and optional adjuvants.
- the preferred compositions of this invention comprise ingredients which are generally regarded as safe, and are not of themselves or in admixture incompatible with milk or milk by-products or human and veterinary applications.
- ingredients may be selected for any given composition which are cooperative in their combined effects whether incorporated for antimicrobial efficacy, physical integrity of the formulation or to facilitate healing and health in medical and veterinary applications, including for example in the case of mastitis, healing and health of the teat or other human or animal body part.
- the composition comprises a carrier which functions to dilute the active ingredients and facilitates stability and application to the intended surface.
- the carrier is generally an aqueous medium such as water, or an organic liquid such as an oil, a surfactant, an alcohol, an ester, an ether, or an organic or aqueous mixture of any of these, or attached to a solid stratum such as colloidal gold.
- Water is preferred as a carrier or diluent in compositions of this invention because of its universal availability and unquestionable economic advantages over other liquid diluents.
- E. coli DH5a Invitrogen, Carlsbad, CA
- pET21 a constructs were induced in E. coli BL21 (DE3) (EMD Biosciences, San Diego, CA).
- aureus strain Newman and the MRSA strains: NRS 194, NRS 271 , and NRS 384 were grown at 37 ° C in Brain Heart Infusion broth (BD, Sparks, MD) or Tryptic Soy Broth (BD, Sparks, MD).
- PCR cloning was used to create the Lyso-PTD construct.
- the reverse PCR primer Lyso-TAT-XhoR (5 -GTG GTG CTC GAG GCG GCG GCG CTG GCG GCG TTT TTT GCG CTT TAT AGT TCC-3' (SEQ ID NO: 5) containing sequences encoding a 9 amino acid derivative (italics) of the13 amino acid HIV-TAT PTD sequence (Table I), the last four codons (bold) of the C-terminus of the lysostaphin gene and an engineered Xhol site (underlined), together with a generic pET21 a forward primer harboring an Ndel site at the translational start site, were used to amplify just the mature lysostaphin (256 aa) in a pET21 a derived vector.
- the amplified Lyso-PTD DNA fragment was restriction enzyme digested (Xhol and Ndel) and ligated into similarly digested pET21 a using conventional molecular techniques.
- BL21 DE3 E. coli (EMD Biosciences, San Diego, CA) were transformed with the characterized ligated coding sequences (SEQ ID NO:1 ) and the expressed protein products were purified (SEQ ID NO:2).
- E. coli BL21 (DE3) cells harboring plasmid constructs were grown in 500 ml Superbroth (Becton Dickenson, Franklin Lakes, NJ) supplemented with 100 ug/ml ampicillin at 37 ° C with shaking. At mid log phase (ODeoonm of 0.4-0.6), cultures were induced with 1 mM IPTG (isopropyl-beta-D-thiogalactopyranoside) followed by four hours shaking at 37 ° C. Cells were pelleted, washed with lysis buffer (50mM
- Extracts were prepared according to a modified procedure of Pritchard et al. (2004. Microbiology 150: 2079-2087).
- a modified procedure of Pritchard et al. 2004. Microbiology 150: 2079-2087.
- cell pellets from 500 ml cultures were resuspended in 10 ml lysis buffer (50mM NaH 2 P0 4 , 300mM NaCI, 10mM Imidazole, pH 8) and disrupted with 15 x 10 second pulses of sonication on ice with 10 second rest periods between pulses.
- Lysates were centrifuged at 6800 rpm in a Sorvall HS4 rotor (8500 x g) and the supernatant decanted and added to 5 ml Ni-NTA (nickel matrix) slurry per manufacturer's instructions (Qiagen, Valencia, CA) with gentle rocking for 1 hour at 4 ° C. The matrix was washed and protein eluted according to the manufacturer's instructions. Protein eluates were desalted in Micro Bio-Spin 30 columns (BioRad) prior to protein determination with BCA protein assay (Pierce, Rockford, III.).
- Ni-NTA nickel matrix
- BioSafe Coomassie stain BioRad, Hercules, Ca.
- a Coomassie stained SDS-PAGE of the nickel chromatography-purified protein C-His-Lyso-PTD indicates the quality of the nickel column purification ( Figure 2A). SDS-PAGE reveals a pure Lyso-PTD nickel column-purified protein having an expected MW of 29.5 kDa.
- MIC Minimal Inhibitory Concentration
- Sterile 96 well microtiter plates containing 0 ⁇ of either Lysostaphin (recombinant, Sigma-Aldrich, L0761 ), Lysostaphin-His (SEQ ID NO: 4), or Lysostaphin-PTD (SEQ ID NO:2) diluted in TSB are inoculated with 100 ⁇ of the bacterial suspension to yield 5 x 10 5 CFU/ml.
- the plate is incubated at 37°C for 20 h, at which point the plate is analyzed for clear vs. turbid wells. Each MIC assay represents at least two identical determinations per experiment.
- NRS 194 (Community acquired S. aureus, C1999000529)
- NRS 271 S. aureus, Linezolid-resistant
- Lysostaphin constructs inhibit extracellular growth of multiple S. aureus strains (including MRSA). Lysostaphin (Sigma) inhibits S. aureus growth at an MIC between 0.078 - 0.332 ⁇ g/ml and Lysostaphin-PTD yields an MIC between 10 - 13.75 ⁇ g/ml with the Lyso-His MIC lying intermediate between these two extremes (Table 2.; Figure 2B).
- Bovine mammary epithelial cells were cocultured with S. aureus Newbould 305 (MOI 10:1 ) in 24 well dishes for 1 h at 37°C. After incubation, monolayers were washed 3X with PBS (pH 7.4) and incubated with lysostaphin (5 ⁇ g/ml) for 1 h at 37°C to kill extracellular S. aureus.
- Lyso-PTD can kill intracellular S. aureus -cultured MAC-T cells in both media and milk.
- the MIC for lysostaphin is within the published range.
- the addition of the PTD increases the lysostaphin MIC four fold.
- Lyso-PTD kills both extracellular (data not shown) and internalized S. aureus in cultured mammary epithelial cells.
- Lyso-PTD can kill intracellular S. aureus in primary murine osteoblasts. Data shown are presented as the mean of three experiments +/- SEM at two different multiplicity of infection (MOI) 75:1 and 250: 1 ( Figure 4). EXAMPLE 7
- hBMEC Brain endothelium
- Lyso-PTD can kill intracellular S. aureus in human brain endothelium cells ( Figure 5 and 6; different concentrations).
- the P-value for the minus lyso-TAT sample at 50 ⁇ g vs 0 ⁇ g 0.053, indicating that there is a trend towards a significant difference in percent survival with the addition of higher concentrations of the glycerol/DPBS control solution.
- Lyso-PTD can kill intracellular S. aureus in human keratinocytes (haCat) ( Figure 7).
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Abstract
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| PCT/US2011/020230 WO2012094004A1 (en) | 2011-01-05 | 2011-01-05 | Fusion of peptidoglycan hydrolase enzymes to a protein transduction domain allows eradication of both extracellular and intracellular gram positive pathogens |
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| CA3171721A1 (en) | 2020-03-19 | 2021-09-23 | Fritz Eichenseher | A stabilized protein of interest |
| WO2024241070A1 (en) | 2023-05-22 | 2024-11-28 | L'oreal | Cosmetic composition comprising an endolysin and a polyvinyl alcohol |
| FR3152395A1 (en) | 2023-08-28 | 2025-03-07 | L'oreal | Cosmetic composition comprising an endolysin derived from Staphylococcus aureus phage and 4-hydroxyacetophenone |
| FR3149204B1 (en) | 2023-06-02 | 2026-02-13 | Oreal | Cosmetic composition comprising an endolysin and a non-ionic surfactant comprising a carbohydrate residue |
| FR3149205B1 (en) | 2023-06-02 | 2026-04-24 | Oreal | Cosmetic composition comprising an endolysine and an organic bulking agent |
| FR3149207B1 (en) | 2023-06-02 | 2026-03-13 | Oreal | Cosmetic composition comprising an endolysine and a compound of formula (I) |
| FR3149209B1 (en) | 2023-06-02 | 2026-04-03 | Oreal | Cosmetic composition comprising an endolysin derived from Staphylococcus aureus phage and an aromatic alcohol |
| FR3149203B1 (en) | 2023-06-02 | 2026-03-13 | Oreal | Anhydrous composition comprising an endolysine and hydroxypropylmethylcellulose and/or pullulan |
| EP4719330A1 (en) | 2023-06-02 | 2026-04-08 | L'oreal | Cosmetic composition comprising an endolysin derived from a staphylococcus aureus phage and an aromatic alcohol |
| FR3149206B1 (en) | 2023-06-02 | 2026-03-13 | Oreal | Aqueous cosmetic composition comprising endolysine and trehalose |
| FR3149208B1 (en) | 2023-06-02 | 2026-03-20 | Oreal | Cosmetic composition, particularly aqueous, comprising an endolysin and a pullulan |
| FR3149202B1 (en) | 2023-06-02 | 2026-04-10 | Oreal | Cosmetic composition comprising an endolysin derived from Staphylococcus aureus phage and an oil. |
| FR3152394B1 (en) | 2023-08-28 | 2026-04-24 | Oreal | Cosmetic composition comprising an endolysin and hydrophobic silica aerogel particles |
| FR3152396A1 (en) | 2023-08-28 | 2025-03-07 | L'oreal | Cosmetic composition comprising an endolysin derived from Staphylococcus aureus phage and a polyhydroxyalkane |
| FR3152393B1 (en) | 2023-08-28 | 2026-04-24 | Oreal | Cosmetic composition comprising an endolysin derived from a Staphylococcus aureus phage and a mineral filler |
| WO2025093666A1 (en) | 2023-11-01 | 2025-05-08 | University Of Copenhagen | Treatment of lymphoma |
| WO2026052743A1 (en) | 2024-09-04 | 2026-03-12 | Micreos Human Health B.V. | Reduction of trans-epidermal water loss by a polypeptide with antibacterial properties |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE602004030923D1 (en) * | 2003-09-17 | 2011-02-17 | Rodos Biotarget Gmbh | LIPID MEDICAMENT FORMULATIONS FOR THE TARGETED PHARMACOTHERAPY OF MYELOIDS AND LYMPHOIDES IMMUNOCELLS |
| US20100221235A1 (en) * | 2006-02-08 | 2010-09-02 | Diatos | Compositions and Methods for Treating Lysosomal Storage Diseases |
-
2011
- 2011-01-05 WO PCT/US2011/020230 patent/WO2012094004A1/en not_active Ceased
- 2011-01-05 EP EP11854973.2A patent/EP2661495A4/en not_active Withdrawn
Non-Patent Citations (2)
| Title |
|---|
| BORYSOWSKI JAN ET AL: "Fusion to cell-penetrating peptides will enable lytic enzymes to kill intracellular bacteria", MEDICAL HYPOTHESES, EDEN PRESS, PENRITH, US, vol. 74, no. 1, 4 August 2009 (2009-08-04) , pages 164-166, XP002587106, ISSN: 0306-9877, DOI: 10.1016/J.MEHY.2009.07.006 * |
| See also references of WO2012094004A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2012094004A1 (en) | 2012-07-12 |
| EP2661495A4 (en) | 2014-08-27 |
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