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I M Ibrahimi

Publications and source records attributed to I M Ibrahimi.

7 recordsLinked to original sources

Electrophoretic polymorphism in rabbit tear lysozyme.

Rabbit tears were found to contain two lysozymes which differed in their electrophoretic mobility and were designated tear lysozymes 1 and 2. Rabbit tear lysozyme 1 was purified to homogeneity by conventional purification methods. It was found to be distinct from other known mammalian c-type lysozymes, rabbit tear lysozyme 2 and the major rabbit gastrointestinal lysozyme. The activity profile is centered around the neutral region with an optimum of 7 which is slightly lower than that for chicken lysozyme. The thermal stability as well as inhibition profiles by the substrate analogues, N-acetylglucosamine (NAG) and chitotetraose (NAG)4 are comparable to those of chicken lysozyme. Based on its molecular weight and catalytic properties this isozyme is classified as a c-type lysozyme.

Animals↗

Amino acid sequences of stomach and nonstomach lysozymes of ruminants.

Complete amino acid sequences are presented for lysozymes c from camel and goat stomachs and compared to sequences of other lysozymes c. Tree analysis suggests that the rate of amino acid replacement went up as soon as lysozyme was recruited for the stomach function in early ruminants. The two lysozymes from goat stomach are the products of a gene duplication that probably took place before the divergence of cow, goat, and deer about 25 million years ago. Partial sequences of three lysozymes from goat tears indicated that (a) the goat tear family of lysozymes may have diverged from the stomach lysozyme family by an ancient duplication and (b) later duplications are probably responsible for the multiple forms of tear and milk lysozymes in ruminants.

Amino Acid Sequence↗

Determinants for protein translocation across mammalian endoplasmic reticulum. Membrane insertion of truncated and full-length prelysozyme molecules.

The translocation of fragments of prelysozyme lacking varying portions of the COOH terminus of the protein is studied in comparison to full-length prelysozyme using transcription-coupled capping of RNA and subsequent translation in a wheat germ cell-free system. The fragments are generated by restricting cloned lysozyme cDNA at selected sites. We found that fragments of 102 and 74 amino acid residues could still be translocated by mammalian endoplasmic reticulum. Addition of signal-recognition particles (SRP) to the cell-free system blocked the nascent chain synthesis. The SRP-depleted membrane by itself could neither process nor translocate the prepolypeptide chain. The presence of both components was essential for processing and translocation as well as the release of the nascent chain arrest induced by SRP. However, when the size of the fragment was limited to 51 amino acids, the SRP-induced arrest, the translocation and processing failed to take place. These results define minimum length and structural requirements for translocation of the nascent chain across mammalian endoplasmic reticulum.

Animals↗

Amino acid sequence of California quail lysozyme. Effect of evolutionary substitutions on the antigenic structure of lysozyme.

To examine the effect of amino acid substitutions in lysozyme on the binding of antibodies to lysozyme, we purified lysozyme from the egg whites of California quail and Gambel quail. Tryptic peptides were isolated from digests of the reduced and carboxymethylated lysozymes and subjected to quantitative analysis of their amino acid compositions. The two proteins were identical by this criterion. Each peptide from the California quail lysozyme was then sequenced by quantitative Edman degradation, and the peptides were ordered by homology with other bird lysozymes. California quail lysozyme is most similar in amino acid sequence to bobwhite quail lysozyme, from which it differs by two substitutions: arginine for lysine at position 68 and histidine for glutamine at position 121. California and bobwhite quail lysozymes were antigenically distinct from each other in quantitative microcomplement fixation tests, indicating that substitutions at one or both of these positions can alter the antigenic structure of lysozyme. Yet neither of these positions is among those claimed to account for the precise and entire antigenic structure of lysozyme [Atassi, M. Z., & Lee, C.-L. (1978) Biochem. J. 171, 429--434]. Two possible explanations for this discrepancy are discussed.

Amino Acid Sequence↗