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Biomedical subjects

H Bilofsky

Publications and source records attributed to H Bilofsky.

8 recordsLinked to original sources

Evidence supporting somatic assembly of the DNA segments (minigenes), coding for the framework, and complementarity-determining segments of immunoglobulin variable regions.

Two sets of apparently conflicting data on the genes coding for the variable region are being accumulated. One suggests that the sets of nucleotides coding for the framework segments of immunoglobulin light and heavy (VL and VH) chains assort independently and are therefore germ-line minigenes which, together with sets of nucleotides coding for the complementarity-determining regions (CDR) or segments assemble to form complete variable (V)-region genes (15, 16, 33). The other, based on the findings with clones from 12-d-old embryo and adult mouse coding for V-regions, infer that the first three frameworks and the three complementarity-determining segments are already assembled as germ-line V-genes (17-21). It is now generally accepted that the J segment, which in the one instance sequenced (21) is made up of nucleotides coding for framework (FR)4 plus two residues of CDR3, is a minigene. An examination of sequences of human, mouse, and rabbit V-regions, assuming the latter hypothesis, indicates that individual framework sets would have to be present in many copies. The FR2 segment found in one human, 20 mice, and 13 rabbits would have to be present in at least 10/14 copies in the NZB, and 5/6 in the BALB/c mouse, and 12/13 in the rabbit. The X-ray crystallographic data show this region to be a loop, projecting out from the V-domain, capable of accommodating many substiutions and 12 and 8 alternative sequences for this FR2 segment have been found in mouse and rabbit VK chains with substitutions possible at 13 of the 15 positions. These alternative sequences occur much less frequently than the preserved FR2 segment. Thus, there is no basis in the protein structure to account for evolutionary stability of this FR2 segment if it occurs in so many copies in germ-line genes coding for residues 1-96, but its stability is easily explained if it were coded for by a separate germ-line minigene present as a single copy; the alternative forms could then have arisen by duplication and mutation of this minigene. Somatic assembly of the minigene segments for the three framework and three complementarity-determining segments during differentiation would account completely for our assortment data from which FR4 was inferred to be a minigene.

Amino Acid Sequence

Some sequence similarities among cloned mouse DNA segments that code for lambda and kappa light chains of immunoglobulins.

A comparison between the cloned mouse DNA segments that were found to code for the lambda and kappa light chains of immunoglobulins established that there were seven short nucleotide sequences, two of which matched 6 out of 7, two 7 out of 8, two 8 out of 9, and one 9 out of 10 bases; these sequences were located either at homologous amino acid positions or at positions displaced by four amino acids or less. They all occurred in the framework regions (FRs), five next to the complementarity-determining regions (CDRs). Three of these were unique and did not occur elsewhere in the immunoglobulin nucleotides sequenced thus far or in DNA's of phage phi X174, phage G4, or simian virus 40. Five could serve as sites of joining by recombination or insertion of CDR to FR segments, and the invariant tryptophan that is the first residue of the second FR might serve as a sixth. These sites are consistent with the mini-gene or insertional hypotheses for the generation of antibody diversity but could also serve as points of recognition for a mutator enzyme or could serve to limit somatic mutation to the CDRs.

Amino Acid Sequence

Variable region genes for the immunoglobulin framework are assembled from small segments of DNA--a hypothesis.

Sequences of each of the four framework segments FR1, FR2, FR3, and FR4 of the variable regions (V-regions) of light and heavy chains of immunoglobulins were grouped into sets with identical sequences. Sets contained from 1 to 18 members. When each V-region was traced from one FR to the next, it was seen that members of the same set in FR1 could be associated with different sets in FR2, FR3, and FR4. This suggests that the framework for the light and heavy chain V-regions is assembled during embryonic development from sets of minigenes for each FR segment. FR4 from three sets of human V(k)I chains also contained members of V(k)II, V(k)III, and V(k)IV subgroups; one FR2 set contained eight rabbit V(k), one human V(k)IV, and four mouse V(k) and an FR4 set contained two human V(H)III and one mouse V(H)III, indicating substantial evolutionary preservation of these sequences and suggesting that the sets of minigenes are highly conserved in the germ line. The clone of Tonegawa et al. [Tonegawa, S., Maxam, A. M., Tizard, R., Bernard, O. & Gilbert, W. (1978) Proc. Natl. Acad. Sci. USA 75, 1485-1489] could be a hybrid FR1 and FR3 coming from minigenes of MOPC 315 (a V(lambda)II) whereas FR2 would come from MOPC 104E (a V(lambda)I). That FR4 is not joined to the rest of the V-region in 12-day-old mouse embryo DNA is also in accord with this hypothesis. Mouse sperm DNA should be examined to establish whether the hypothesized minigenes are separated by intervening sequences and whether the complementarity-determining (hypervariable) regions or segments of the V-region are separated from the framework in genomic DNA. Sperm DNA from rabbits or other species could be used to search for minigene segments whose sequences are identical in several species.

Animals

Some correlations between specificity and sequence of the first complementarity-determining segments of human kappa light chains.

Examination of the sequences of the first complementarity-determining segments of the light chains of two IgM cold agglutinins agains blood group I, four monoclonal IgM antibodies against IgG proteins, and of three Bence Jones proteins provides clues for predicting which residues contribute to antibody specificity and indicates that these predictions may be tested by evaluating recovery of antibody activity and specificity when various light chains are recombined with homologous and heterologous heavy chains.

Antibodies, Anti-Idiotypic

Attempts to locate residues in complementarity-determining regions of antibody combining sites that make contact with antigen.

From collected data on variable region sequences of heavy chains of immunoglobulins, the probability of random associations of any two amino-acid residues in the complementarity-determining segments was computed, and pairs of residues occurring significantly more frequently than expected were selected by computer. Significant associations between Phe 32 and Tyr 33, Phe 32 and Glu 35, and Tyr 33 and Glu 35 were found in six proteins, all of which were mouse myeloma proteins which bound phosphorylcholine (= phosphocholine). From the x-ray structure of McPC603, Tyr 33 and Glu 35 are contacting residues; a seventh phosphorylcholine-binding mouse myeloma protein also contained Phe 32 and Tyr 33 but position 35 had only been determined as Glx and thus this position had not been selected. Met 34 occurred in all seven phosphorylcholine-binding myeoma proteins but was also present at this position in 29 other proteins and thus was not selected; it is seen in the x-ray structure not to be a contacting residue. The role of Phe 32 is not obvious but it could have some conformational influence. A human phosphorylcholine-binding myeloma protien also had Phe, Tyr, and Met at positions 32, 33, and 34, but had Asp instead of Glu at position 35 and showed a lower binding constant. The ability to use sequence data to locate residues in complementarity-determing segments making contact with antigenic determinants and those playing essentially a structural role would contribute substantially to the understanding of antibody specificity.

Amino Acids

Similarities among hypervariable segments of immunoglobulin chains.

A human lambdaV (Mcg) and a human lambdaII (Vil) myeloma protein have identical sequences in their first hypervariable segments although they differ at 21 positions throughout the variable region. If a different structural gene is responsible for each subgroup, the findings favor insertion of information for the hypervariable or complementarity-determining segments.

Amino Acid Sequence