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Biomedical subjects

Richard D'Ari

Publications and source records attributed to Richard D'Ari.

3 recordsLinked to original sources

Hardware (DNA) circuits.

A scheme is presented whereby a new genetic control circuit can be introduced into an organism, permitting the experimenter to turn the expression of a given gene (or set of genes) on or off at will. The proposed scheme involves a positive feedback loop--here, a positive regulator, the CII protein of phage lambda, with its structural gene engineered so as to require CII for its expression. This feedback loop creates the possibility of two stable steady states, with gene cII ON or OFF. Genes added downstream of cII and lacking a promoter will follow the same expression as cII. Two additional circuits allow the experimenter to switch at will between the ON and OFF states.

Bacteriophage lambda↗

Memory in bacteria and phage.

Whenever the state of a biological system is not determined solely by present conditions but depends on its past history, we can say that the system has memory. Bacteria and bacteriophage use a variety of memory mechanisms, some of which seem to convey adaptive value. A genetic type of heritable memory is the programmed inversion of specific DNA sequences, which causes switching between alternative patterns of gene expression. Heritable memory can also be based on epigenetic circuits, in which a system with two possible steady states is locked in one or the other state by a positive feedback loop. Epigenetic states have been observed in a variety of cellular processes, and are maintained by diverse mechanisms. Some of these involve alternative DNA methylation patterns that are stably transmitted to daughter molecules and can affect DNA-protein interactions (e.g., gene transcription). Other mechanisms exploit autocatalytic loops whereby proteins establish the proper conditions for their continued synthesis. Template polymers other than nucleic acids (e.g., components of the cell wall) may also propagate epigenetic states. Non-heritable memory is exemplified by parasitic organisms that bear a signature of their previous host, such as host-controlled modification of phage DNA or porin hitchhiking in predatory bacteria. The heterogeneous nature of the examples known may be indicative of widespread occurrence of memory mechanisms in bacteria and phage. However, the actual extent, variety and potential selective value of prokaryotic memory devices remain open questions, still to be addressed experimentally.

Bacteria↗

From maltose to cell division.

Seeing connections between apparently unrelated areas is the hallmark of a deep thinker. Maurice Hofnung showed that his interest in the maltose regulon and my own interest in the regulation of cell division in Escherichia coli could lead to fruitful collaboration. From the maltose regulon to the LamB receptor to phage A to the SOS response to the Mutatest to induction of expression of the SOS-inducible division inhibitor SfiA to the SOS Chromotest based on sfiA::lacZ induction to the development of a commercial kit for measuring the genotoxicity of environmental substances...this was but one of the original trails that Maurice Hofnung blazed and exploited successfully.

Cell Division↗