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Floyd A. Reed

Publications and source records attributed to Floyd A. Reed.

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RPM-Drive: A robust, safe, and reversible gene drive system that remains functional after 200+ generations

Despite the advent of several novel, synthetic gene drive mechanisms and their potential to one-day control a number of devastating diseases, among other applications, practical use of these systems remains contentious and risky. In particular, there is little in the way of empirical evidence of the long-term robustness of these synthetic systems against mutational breakdown. Rather, most existing systems are either known or predicted to be susceptible to rapid inactivation, though methodological designs continue to be refined. Here we evaluate a currently existing synthetic, underdominance-based gene drive system 200+ generations after it was first established in a laboratory colony of Drosophila melanogaster. Not only do we find that the system is still functioning as designed, we also show evidence that disruptions to the genetic construct are highly likely to be removed by natural selection, contributing to the system's robust, long-term stability. This stability appears to be a result of a fundamental relationship between ribosomal proteins (a novel target of the system) and natural cellular defenses that protect against cancer development. As far as we are aware, this is the longest continually functioning synthetic gene drive system thus verified, making it highly appropriate for additional research into its eventual suitability for field trials. Due to inherent properties of this gene drive, it is also likely to be adaptable for use in many different species. The insect lines established and used to test this system have been deposited at a Drosophila stock center, and are available to labs for further, independent testing.

q-bio.PE

Evolutionary Genetic Engineering in the Indo-Pacific: Conservation, Humanitarian, and Social Issues

The Indo-Pacific region contains a unique mix of opportunities for the development and use of genetic-pest-management, gene-drive, and gene-drive-like technologies. Here I collectively refer to these technologies as Evolutionary Genetic Engineering (EGE). Indo-Pacific Islands have some of the world's highest rates of endemism and extinction---species and entire ecosystems are at risk. This threat to the natural world is coupled with the burden of human diseases, many of which are new and emerging or neglected tropical diseases. The same factors which have led to high rates of endemism also, in some ways, make this region an ideal testing ground for some types of EGE's. There is great potential for positive humanitarian, economic, and conservation applications of EGE's. However, these types of new technologies will be initially viewed from the perspective of the recent history of a loss of self determination, issues of social justice, and the testing of new technologies (e.g., biocontrol, agricultural, nuclear) in the Indo-Pacific---a region of the world that is still extensively colonized and controlled by Western Nations. Experience with successes and failures in related technologies suggests a path to move forward---a set of eight recommendations---to maximize the potential payoffs and minimize unintended negative effects of EGE's.

q-bio.PE

Stability of Underdominant Genetic Polymorphisms in Population Networks

Heterozygote disadvantage is potentially a potent driver of population genetic divergence. Also referred to as underdominance, this phenomena describes a situation where a genetic heterozygote has a lower overall fitness than either homozygote. Attention so far has mostly been given to underdominance within a single population and the maintenance of genetic differences between two populations exchanging migrants. Here we explore the dynamics of an underdominant system in a network of multiple discrete, yet interconnected, populations. Stability of genetic differences in response to increases in migration in various topological networks is assessed. The network topology can have a dominant and occasionally non-intuitive influence on the genetic stability of the system.

q-bio.PE