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Milano, S. N.

Publications and source records attributed to Milano, S. N..

2 recordsLinked to original sources

The role of ER exit sites in maintaining P-body organization and transmitting ER stress response during Drosophila melanogaster oogenesis

Processing bodies (P-bodies) are cytoplasmic membrane-less organelles which host multiple mRNA processing events. While the fundamental principles of P-body organization are beginning to be elucidated in vitro, a nuanced understanding of how their assembly is regulated in vivo remains elusive. Here, we investigate the potential link between ER exit sites and P-bodies in Drosophila melanogaster egg chambers. Employing a combination of live and super-resolution imaging, we found that P-bodies associated with ER exit sites are larger and less mobile than cytoplasmic P-bodies, indicating that they constitute a distinct class of P-bodies which are more mature than their cytoplasmic counterparts. Moreover, we demonstrate that altering the composition of ER exit sites has differential effects on core P-body proteins (Me31B, Cup, and Trailer Hitch) suggesting a potential role for ER exit sites in P-body organization. We further show that in the absence of ER exit sites, P-body integrity is compromised and the stability and translational repression efficiency of the maternal mRNA, oskar, are reduced. Finally, we show that ER stress is communicated to P-bodies via ER exit sites, highlighting the pivotal role of ER exit sites as a bridge between membrane-bound and membrane-less organelles in ER stress response. Together, our data unveils the significance of ER exit sites not only in governing P-body organization, but also in facilitating inter-organellar communication during stress, potentially bearing implications for a variety of disease pathologies.

cell biology↗

Cup is essential for oskar mRNA translational repression during early Drosophila oogenesis

The proper timing of mRNA translation is crucial across many biological systems for processes such as intercellular communication, body pattern formation, and morphogenesis. The main D. melanogaster posterior determinant, oskar, is maternally transcribed, but only translated when properly localized at the oocytes posterior cortex. Bruno 1 and Cup are two effector proteins known to participate in multiple aspects of oskar mRNA regulation. Current model describes a mechanism in which Bruno 1 is necessary for Cups recruitment to oskar mRNA, and Bruno 1 is indispensable for its translational repression. Here, we reveal that the Bruno 1-Cup interaction, as well as their interdependent influence on each others mRNA and protein expression, lead to precise oskar mRNA regulation during early oogenesis. We show that these factors stably associate with the oskar mRNA in vivo, but surprisingly, Bruno 1s stable association with oskar mRNA depends on Cup, while Bruno 1 is not necessary for Cup association to oskar mRNA. During early oogenesis, Cup, not Bruno 1, is the essential factor for oskar mRNA repression. Cup is a crucial P-body member that maintains proper P-body morphology during oogenesis, as well as it is necessary for oskar mRNAs association with P-bodies, thus driving the translational repression and stability of oskar mRNA. Our experimental results collectively suggest a regulatory mechanism where a feedback loop between Bruno 1 and Cup coordinates oskar mRNA regulation in the egg chamber allowing for proper development to occur.

developmental biology↗