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S Torrekens

Publications and source records attributed to S Torrekens.

24 records · Page 2Linked to original sources

A new family of basic cysteine-rich plant antifungal proteins from Brassicaceae species.

Out of seeds of 4 Brassicaceae species, 7 antifungal proteins were isolated which are nearly identical to 2 previously characterized radish seed antifungal proteins. These basic proteins, multimers of a 5 kDa polypeptide, specifically inhibit fungal growth. One of the antifungal proteins has decreased antifungal activity and an increased antibacterial activity. In addition, the previously described antifungal activity of the radish seed 2S albumins was extended to the 2S albumins of the seeds of the 4 other Brassicaceae species. A 2S albumin-like trypsin-inhibitor from barley seeds was found to have much less activity against fungi.

Albumins↗

Mannose-specific lectins bind alpha-2-macroglobulin and an unknown protein from human plasma.

GNA, the mannose-specific lectin from Galanthus nivalis was confirmed to bind alpha-2-macroglobulin (A2M) but another protein was copurified with A2M from total human plasma. A total of 23 other lectins with diverse specificities were tested for reaction with human A2M and with three other members of the A2M family. NPA, a mannose-specific lectin isolated from Narcissus pseudonarcissus bulbs, and RSA, the Rhizoctonia solani agglutinin, were selected for further testing. For isolation of A2M, immobilized NPA was superior to GNA because its binding capacity was an order of magnitude higher. The specificity of these lectins must be very similar however, because the same unknown plasma protein was also bound by NPA. A2M and the unknown protein must share a unique mannose carbohydrate structure not present in any other human plasma protein. The copurified protein subunit size of 185 kDa is very similar to that of A2M, but the native molecular mass of 350 kDa indicated a noncovalent homodimer structure. Together with the acid isoelectric point this is not typical for any known plasma protein nor for any unidentified spot on the two-dimensional map of human plasma proteins. No immunological reaction with available antisera was evident. A specific antiserum raised to the unknown protein demonstrated its presence in all human plasma samples examined. The N-terminal residue was blocked, whereas internal protein sequences obtained after CNBr fragmentation and proteolysis were not homologous to any known protein sequence. These data demonstrate that this protein is unknown and not a proteinase inhibitor of the A2M family.

Amino Acid Sequence↗

The primary sequence and the subunit structure of mouse alpha-2-macroglobulin, deduced from protein sequencing of the isolated subunits and from molecular cloning of the cDNA.

Mouse plasma alpha-2-macroglobulin (m alpha 2M) was isolated and the N-terminal amino-acid sequences determined after separation of the 165-kDa and 35-kDa subunits. These sequences were compared to the protein sequence predicted by the cDNA, which was cloned from a mouse liver library and sequenced. From these data it is evident that both subunits are encoded by one mRNA of approximately 5 kb expressed predominantly in liver. The smaller subunit, with the N-terminal sequence DLSSSDLT, comprises the C-terminal 257 residues of m alpha 2M and is derived from a single-chain precursor probably by proteolytic processing at an arginine residue in the sequence PTRDLSS. Analysis of the predicted protein further showed all the salient features of a proteinase inhibitor of the macroglobulin family: a bait region that deviates from all known sequences in this family, a very conserved internal thiolester site and conserved cysteine residues and putative N-glycosylation sites. The synthesis of m alpha 2M in adult liver was demonstrated by Northern blotting and in fetal liver by in-situ hybridization. Transient transfection of COS cells with the cDNA under control of a viral promoter demonstrated the secretion and partial processing of m alpha 2M in the culture medium. In plasma the level of m alpha 2M was found to be stable as expected for the murine counterpart of human plasma alpha-2-macroglobulin. The possibilities of using the mouse as a genetic model to study this proteinase inhibitor in vivo are discussed.

Amino Acid Sequence↗

Isolation and characterization of alliinase cDNA clones from garlic (Allium sativum L.) and related species.

cDNA libraries constructed from poly(A)-rich RNA isolated from Allium sativum (garlic), Allium cepa (onion) and Allium ascalonicum (shallot) were screened for cDNA clones encoding the alliinase using colony hybridization. Sequence analysis of the alliinase cDNA clones from different Alliaceae species revealed a high degree of sequence similarity both at the nucleotide and at the amino acid level. Apparently, the alliinases are translated from mRNA species of approximately 2200 nucleotides. The primary translation products are preproproteins which are converted into the mature alliinases following post-translational modifications. In the case of the garlic alliinase, the mRNA encodes a 486-amino-acid polypeptide with a molecular mass of 55,623 Da. Cleavage of the signal peptide (28 amino acids) results in a preprotein which extends 10 amino acids before the first amino acid of the mature protein of 51,451 Da. Southern-blot analysis of genomic DNA has shown that the alliinases are most probably encoded by a family of closely related genes, which is in good agreement with the sequence heterogeneity found between different alliinase cDNA clones of one species.

Allium↗

The closely related homomeric and heterodimeric mannose-binding lectins from garlic are encoded by one-domain and two-domain lectin genes, respectively.

Lectin cDNA clones for two different lectins from garlic (Allium sativum L.) bulbs, ASAI and ASAII (ASA, Allium sativum agglutinin), were isolated and characterized. The first lectin, ASAI, is a heterodimer composed of two different subunits of 11.5 kDa and 12.5 kDa. It is translated from an mRNA of 1400 nucleotides encoding a polypeptide of 306 amino acids with two very similar domains. N-terminal sequencing of the two polypeptides of the mature lectin confirmed that both subunits are derived from the same precursor and that each corresponds to one of the two domains in the sequence. In contrast to ASAI, the second garlic lectin, ASAII, is a homodimer of two identical 12-kDa subunits. It is translated from an mRNA of approximately 800 nucleotides encoding a polypeptide of 154 amino acids. Interestingly, the coding region of the ASAII cDNA clones is almost identical to that of the second domain of the ASAI cDNA clones.

Amino Acid Sequence↗

Molecular characterization of the murinoglobulins.

Proteinase inhibitors of the alpha 2-macroglobulin (alpha 2M) type, although well characterized in vitro, still evade a precise description of their actual role in vivo. The main reason for this is the absence of any clinical evidence for the malfunctioning of alpha 2M in humans. Moreover, despite their ubiquitous presence in animals of very different taxa, animal models are notoriously absent in this field. With the advent of transgenic animals an important tool became available in this respect. As a first step in this direction we are analyzing at the molecular level all the members of this proteinase inhibitor family in the mouse. To retrieve related sequences we screened a mouse liver cDNA library with human alpha 2M cDNA. The sequences from two isolated clones partially coded for a protein with a high degree of sequence identity with human alpha 2M, rat alpha 2M, and rat alpha 1I3. Protein sequence data from the large and small subunits of mouse alpha 2M and of the protein isolated from mouse plasma allowed us to designate the clones as coding for murinoglobulin (MUG), an alpha 2M-related single-chain proteinase inhibitor. Rescreening resulted in the isolation of 24 clones, of which 21 were related or identical to the original MUG clones. Restriction analysis led to three groups of clones of which representative members were sequenced. Two highly homologous cDNA sequences were derived, coding for proteins that displayed the typical features of alpha 2M-type proteinase inhibitors: the overall size, the positions of a putative bait region and of the internal thiol ester, and the positional conservation of cysteine residues and putative asparagine-glycosylation sites. A third related member for which only one incomplete cDNA clone was obtained and sequenced, proved to be aberrant: the bait region contained what appeared to be an intron which escaped proper splicing. A second apparent intron was present at the 5' end of the cDNA while a frameshift mutation near the 3' end (insertion of a G) caused premature termination of the reading frame when compared to the other MUG sequences. These features were confirmed from an isolated genomic clone and extended at the genomic level: the corresponding gene, a transcriptionally weakly active pseudogene, contained the small intron but as part of a larger intron. The presence of suitable intron/exon splice sites show that a relatively small part of the intron is being introduced as an exon in the mRNA.(ABSTRACT TRUNCATED AT 400 WORDS)

Amino Acid Sequence↗