Delbert A. Green
Harvard University
10 Papers
58 Citations
Delbert A. Green is an academic researcher from Harvard University. The author has contributed to research in topics: Ovariole & Biology. The author has an hindex of 5, co-authored 6 publications.
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Papers
The roles of cell size and cell number in determining ovariole number in Drosophila.
Didem P. Sarikaya,Abel A. Belay,Abha Ahuja,Aisha Dorta,Delbert A. Green,Cassandra G. Extavour +5 more
TL;DR: Two distinct developmental processes that regulate ovariole number are identified: establishment of total TFC number, and TFC sorting during TF morphogenesis, which is shown to alter the total number of TFCs available to contribute to TF formation.
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Insulin signalling underlies both plasticity and divergence of a reproductive trait in Drosophila
TL;DR: It is shown that insulin/insulin-like growth factor signalling (IIS) underlies both phenotypic plasticity and evolutionary diversification of ovariole number, a quantitative reproductive trait, in Drosophila.
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Convergent evolution of a reproductive trait through distinct developmental mechanisms in Drosophila.
TL;DR: It is shown that independent evolution of a reproductive trait, ovariole number, has resulted from changes in distinct developmental mechanisms, each of which may have a different underlying genetic basis in Drosophila.
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Counting in oogenesis
TL;DR: This work discusses counting mechanisms that operate during ovarian development and oogenesis, and the importance of knowing the number of cells within a structure and within an organ for correct development in animals and plants.
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Seasonal plasticity in morphology and metabolism differs between migratory North American and resident Costa Rican monarch butterflies
Ayşe Tenger-Trolander,Cole R. Julick,Wei Fu Lu,Delbert A. Green,Kristi L. Montooth,Marcus R. Kronforst +5 more
TL;DR: The findings suggest that the recent expansion of monarchs into habitats that support year-round breeding may be accompanied by the loss of some aspects of morphological plasticity as well as the underlying physiological mechanisms that maintain metabolic homeostasis in the face of temperature heterogeneity.
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