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Biomedical subjects

R F Doolittle

Publications and source records attributed to R F Doolittle.

At least 55 records · Page 3Linked to original sources

Crystallization of fragment D from human fibrinogen.

Fragment D from human fibrinogen has been crystallized. The fragment, which is composed of three disulfide-linked chains (alpha' beta' gamma' = 88,000), was generated with either plasmin or mild trypsin digestion. The crystals diffracted out to 3.5 A; the space group is P2(1), unit cell dimensions a = 108 A, b = 48 A, c = 167 A, beta = 106 degrees. Fragment D was also co-crystallized with the ligand GPRP-amide, in which case the space group is consistent with P212121, unit cell dimensions a = 476 A, b = 82 A, c = 432 A.

Chromatography, Affinity↗

Phylogenetic analysis of the aminoacyl-tRNA synthetases.

Numerous aminoacyl-tRNA synthetase sequences have been aligned by computer and phylogenetic trees constructed from them for the two classes of these enzymes. Branching orders based on a consensus of these trees have been proposed for the two groups. Although the order of appearance can be rationalized to fit many different scenarios having to do with the genetic code, the invention of a system for translating nucleic acid sequences into polypeptide chains must have predated the existence of these proteins. In the past, a variety of schemes has been proposed for matching amino acids and tRNAs. Most of these have invoked direct recognition of one by the other, whether or not the anticodon was involved. Often ignored is the possibility of a nonprotein (presumably RNA) matchmaker for bringing the two into conjunction. If such had been the case, then the contemporary aminoacyl-tRNA synthetases could have entered the system gradually, each specific type replacing its matchmaking RNA counterpart in turn. A simple displacement scheme of this sort accommodates the existence of two different families of these enzymes, the second being introduced well before the first had undergone sufficient genetic duplications to specify the full gamut of amino acids. Such a scheme is also consistent with similar amino acids often, but not always, being the substrates of enzymes with the most similar amino acid sequences.

Amino Acid Sequence↗

The multiplicity of domains in proteins.

The domainal nature of proteins is well established. What is less certain is how many domains are evolutionarily mobile in that they occur in otherwise nonhomologous proteins or in different sequential locations in homologous proteins. The combinatorial advantage of shuffling domains around into diverse settings is obvious. Those domains that have been shuffled about in recent evolutionary times, within the last half billion years or so, can usually be identified on the basis of sequence resemblances alone. Contrarily, domains that were rearranged in ancient times may only be apparent after three-dimensional analysis, their sequence resemblances having been eroded over time. The shuffling of domains in recently evolved proteins has been greatly promoted by introns, but this does not imply that all domainal rearrangements involve introns. Only a small fraction of known exons show evidence of having been shuffled. Taken in aggregate, the available data best fit a scenario whereby a relative small number of genes encoding domain-sized polypeptides has been expanded by duplication and modification with a burst of exceptional genomic rearrangement.

Animals↗

Drosophila kelch motif is derived from a common enzyme fold.

A systematic screening of sequence databases with a motif hitherto found only in animal and poxvirus proteins has revealed a trail leading back to prokaryotes. Fortuitously, an X-ray structure is available for one of the identified sequences and shows the fundamental fold to be a set of circularly arranged beta sheets. This structure may be very widely distributed throughout the biological world in sialidases and some other enzymes. In bacteria, a mobile noncatalytic domain is often associated with these same enzymes.

Alcohol Oxidoreductases↗

Tracing the spread of fibronectin type III domains in bacterial glycohydrolases.

The evolutionary spread of 22 fibronectin type III (Fn3) sequences among a dozen bacterial enzymes has been traced by searching databases with the non-Fn3 parts of the enzyme sequences. Numerous homologues were found that lacked the Fn3 domains. In each case the related sequences were aligned, phylogenetic trees were constructed, and the occurrences of Fn3 units on the trees were noted. Comparison with phylogenetic trees prepared from the Fn3 segments themselves allowed inferences to be made about when the Fn3 units were shuffled into their present positions.

Amino Acid Sequence↗

Convergent evolution: the need to be explicit.

Convergence as a phenomenon in molecular evolution is an issue that confuses many discussions. Often the problem is that not enough care is taken to state exactly what kind of convergence one has in mind. Functional and mechanistic convergence are both common, and some structural convergence has probably occurred, but a convincing case for genuine sequence convergence has yet to be made.

Amino Acid Sequence↗

Protein sequence comparisons: searching databases and aligning sequences.

As the explosive growth of sequence databases continues, both the content of these databases and the best strategies for exploiting them are changing. Remarkable improvements in the performance of microcomputers have put very sophisticated tools within the reach of all investigators. New scoring schemes have improved the sensitivity of searching regimens and the accuracy of alignments.

Algorithms↗

Molecular cloning of silkworm (Bombyx mori) antichymotrypsin. A new member of the serpin superfamily of proteins from insects.

The cDNA of silkworm (Bombyx mori) antichymotrypsin (sw-Achy) was cloned from larval fat body and its nucleotide sequence was determined. The deduced amino acid sequence of mature sw-Achy begins with Phe1 and ends with Phe384, with a preceding 16-amino-acid signal peptide. The amino-acid sequence similarities of sw-Achy with the serine-proteinase inhibitors (serpins) silkworm antitrypsin, tobacco hornworm alaserpin, human alpha-1-antitrypsin and human alpha-1-antichymotrypsin were 29.6%, 30.3%, 26.1%, and 25.0%, respectively. The highly conserved amino acids in other serpins are also conserved in sw-Achy. sw-Achy is thought to be a new member of the serpin family. Multiple alignment of sw-Achy with 23 other kinds of serpin by the progressive method produced a phylogenetic tree in which all four insect serpins are grouped separately within one branch. The reactive site of sw-Achy with alpha-chymotrypsin was identified as Thr343-Ser344 by direct amino-acid sequence analysis of cleaved and purified protein.

Amino Acid Sequence↗

Proposed acquisition of an animal protein domain by bacteria.

A systematic screen of a protein sequence data base confirms that the fibronectin type III (Fn3) domain is widely distributed among animal proteins and occurs also in several bacterial carbohydrate-splitting enzymes. The motif has yet to be identified in proteins from plants or fungi. All indications are that the bacterial sequences are much too similar to the animal type to be the result of conventional vertical descent. Rather, it is likely that the bacterial units were initially acquired from an animal source and are being spread further by horizontal transfers between distantly related bacteria.

Amino Acid Sequence↗

Photoaffinity labeling of the primary fibrin polymerization site: isolation and characterization of a labeled cyanogen bromide fragment corresponding to gamma-chain residues 337-379.

Human fibrinogen and the plasmin-generated fibrinogen fragment D were photoaffinity labeled specifically with the peptide [14C]Gly-Pro-Arg-N(4-azido-2-nitrophenyl)Lys amide. In the case of fibrinogen, greater than 85% of the incorporated radioactivity was found in the gamma chain. Similarly, when fragment D (Mr, 90,000) was labeled with the same derivatized peptide, virtually all the radioactivity was found in the gamma-chain portion. The labeled fragment D was treated with CNBr and an initial purification was achieved by two gel-filtration steps. The labeled material was purified further by HPLC and was also compared with CNBr digests of unlabeled material. Amino acid analysis and gas-phase sequencing showed the labeled fragment to be gamma-chain residues 337-379.

Amino Acid Sequence↗

Photoaffinity labeling of the primary fibrin polymerization site: localization of the label to gamma-chain Tyr-363.

Fragment D prepared from human fibrinogen was labeled specifically by photoactivation of the peptide [14C]Gly-Pro-Arg-N-(4-azido-2-nitrophenyl)Lys amide. The preparation was freed of excess labeling reagents and then reduced and alkylated. The component alpha, beta, and gamma chains were purified by chromatography on carboxymethylcellulose and the radioactivity was found to be restricted to the gamma chain. Isolated gamma chains were digested with various endopeptidases, both alone and in tandem, and the products were fractionated by gradient HPLC. The amino acid compositions of all labeled peptides led to the conclusion that the modification occurs exclusively on gamma-chain Tyr-363.

Affinity Labels↗

cDNA sequence of a second fibrinogen alpha chain in lamprey: an archetypal version alignable with full-length beta and gamma chains.

The message for a second fibrinogen alpha chain has been cloned from a lamprey liver cDNA library. The sequence is unique in that the amino-terminal half is homologous to all other known alpha chains, including another from lamprey, but its carboxyl-terminal half is homologous to the carboxyl-terminal portions of beta and gamma chains, segments that compose the distal globular regions of fibrinogen. The structural pattern of this newly discovered alpha chain suggests that it could be a direct descendant of the archetypal chain that existed prior to the gene duplications that led to unique beta and gamma chains and before the dislocating events that gave rise to contemporary alpha chains.

Amino Acid Sequence↗

Stein and Moore Award address. Reconstructing history with amino acid sequences.

The main goal of the protein evolutionist is the reconstruction of past events leading to the structures of contemporary proteins. The common strategy is to align amino acid sequences and make inferences about matters of common ancestry. The rate of change of amino acid sequence varies greatly from protein to protein, and this naturally affects how far back a given protein's ancestry can be traced. Happily, the rate of change of many proteins is slow enough that very ancient events can be inferred. Many mainstream metabolic enzymes, for example, are 40-50% identical in prokaryotes and eukaryotes, groups that diverged from a common ancestor more than 1.5 billion years ago. Moreover, some eukaryotic proteins like actin and tubulin change so slowly that they are seldom less than 60% identical, no matter from what source they are drawn. As it happens, prokaryotic counterparts for many eukaryotic cytoskeletal proteins are unknown. A recent exception involves the finding that a heat shock protein cognate is a relative of actin. The gene duplication that gave rise to these two proteins must have been an ancient event. The more recent invention of other proteins whose distribution is restricted to one or the other of the major kingdoms may be easier to trace. Among the factors that can confound the reconstruction of events, however, are occasional horizontal gene transfers and exon shuffling. The latter has led to a number of mosaic proteins, many of which contain various combinations of a relatively small set of modules like the epidermal growth factor domain.

Actins↗