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Dive into the research topics where Lita Duraine is active.

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Featured researches published by Lita Duraine.


PLOS Biology | 2012

Crag Is a GEF for Rab11 Required for Rhodopsin Trafficking and Maintenance of Adult Photoreceptor Cells

Bo Xiong; Vafa Bayat; Manish Jaiswal; Ke Zhang; Hector Sandoval; Wu-Lin Charng; Tongchao Li; Gabriela David; Lita Duraine; Yong-Qi Lin; G. Gregory Neely; Shinya Yamamoto; Hugo J. Bellen

Transport of newly synthesized Rhodopsin upon light stimulation in adult Drosophila photoreceptors is mediated by a Crag/Rab11-dependent vesicular trafficking process.


eLife | 2014

Mitochondrial fusion but not fission regulates larval growth and synaptic development through steroid hormone production.

Hector Sandoval; Chi-Kuang Yao; Kuchuan Chen; Manish Jaiswal; Taraka R. Donti; Yong Qi Lin; Vafa Bayat; Bo Xiong; Ke Zhang; Gabriela David; Wu-Lin Charng; Shinya Yamamoto; Lita Duraine; Brett H. Graham; Hugo J. Bellen

Mitochondrial fusion and fission affect the distribution and quality control of mitochondria. We show that Marf (Mitochondrial associated regulatory factor), is required for mitochondrial fusion and transport in long axons. Moreover, loss of Marf leads to a severe depletion of mitochondria in neuromuscular junctions (NMJs). Marf mutants also fail to maintain proper synaptic transmission at NMJs upon repetitive stimulation, similar to Drp1 fission mutants. However, unlike Drp1, loss of Marf leads to NMJ morphology defects and extended larval lifespan. Marf is required to form contacts between the endoplasmic reticulum and/or lipid droplets (LDs) and for proper storage of cholesterol and ecdysone synthesis in ring glands. Interestingly, human Mitofusin-2 rescues the loss of LD but both Mitofusin-1 and Mitofusin-2 are required for steroid-hormone synthesis. Our data show that Marf and Mitofusins share an evolutionarily conserved role in mitochondrial transport, cholesterol ester storage and steroid-hormone synthesis. DOI: http://dx.doi.org/10.7554/eLife.03558.001


The Journal of Neuroscience | 2012

Drosophila Neuroligin 2 is Required Presynaptically and Postsynaptically for Proper Synaptic Differentiation and Synaptic Transmission

Yu Chi Chen; Yong Qi Lin; Swati Banerjee; Koen J. T. Venken; Jingjun Li; Afshan Ismat; Kuchuan Chen; Lita Duraine; Hugo J. Bellen; Manzoor A. Bhat

Trans-synaptic adhesion between Neurexins (Nrxs) and Neuroligins (Nlgs) is thought to be required for proper synapse organization and modulation, and mutations in several human Nlgs have shown association with autism spectrum disorders. Here we report the generation and phenotypic characterization of Drosophila neuroligin 2 (dnlg2) mutants. Loss of dnlg2 results in reduced bouton numbers, aberrant presynaptic and postsynaptic development at neuromuscular junctions (NMJs), and impaired synaptic transmission. In dnlg2 mutants, the evoked responses are decreased in amplitude, whereas the total active zone (AZ) numbers at the NMJ are comparable to wild type, suggesting a decrease in the release probability. Ultrastructurally, the presynaptic AZ number per bouton area and the postsynaptic density area are both increased in dnlg2 mutants, whereas the subsynaptic reticulum is reduced in volume. We show that both presynaptic and postsynaptic expression of Dnlg2 is required to restore synaptic growth and function in dnlg2 mutants. Postsynaptic expression of Dnlg2 in dnlg2 mutants and wild type leads to reduced bouton growth whereas presynaptic and postsynaptic overexpression in wild-type animals results in synaptic overgrowth. Since Nlgs have been shown to bind to Nrxs, we created double mutants. These mutants are viable and display phenotypes that closely resemble those of dnlg2 and dnrx single mutants. Our results provide compelling evidence that Dnlg2 functions both presynaptically and postsynaptically together with Neurexin to determine the proper number of boutons as well as the number of AZs and size of synaptic densities during the development of NMJs.


PLOS Biology | 2014

The retromer complex is required for rhodopsin recycling and its loss leads to photoreceptor degeneration.

Shiuan Wang; Kai Li Tan; Melina A. Agosto; Bo Xiong; Shinya Yamamoto; Hector Sandoval; Manish Jaiswal; Vafa Bayat; Ke Zhang; Wu Lin Charng; Gabriela David; Lita Duraine; Kartik Venkatachalam; Theodore G. Wensel; Hugo J. Bellen

Rhodopsin recycling via the retromer, rather than degradation through lysosomes, can alleviate light-induced photoreceptor degeneration in Drosophila.


American Journal of Human Genetics | 2016

Recurrent De Novo and Biallelic Variation of ATAD3A, Encoding a Mitochondrial Membrane Protein, Results in Distinct Neurological Syndromes

Tamar Harel; Wan Hee Yoon; Caterina Garone; Shen Gu; Zeynep Coban-Akdemir; Mohammad K. Eldomery; Jennifer E. Posey; Shalini N. Jhangiani; Jill A. Rosenfeld; Megan T. Cho; Stephanie Fox; Marjorie Withers; Stephanie M. Brooks; Theodore Chiang; Lita Duraine; Serkan Erdin; Bo Yuan; Yunru Shao; Elie Moussallem; Costanza Lamperti; Maria Anna Donati; Joshua D. Smith; Heather M. McLaughlin; Christine M. Eng; Magdalena Walkiewicz; Fan Xia; Tommaso Pippucci; Pamela Magini; Marco Seri; Massimo Zeviani

ATPase family AAA-domain containing protein 3A (ATAD3A) is a nuclear-encoded mitochondrial membrane protein implicated in mitochondrial dynamics, nucleoid organization, protein translation, cell growth, and cholesterol metabolism. We identified a recurrent de novo ATAD3A c.1582C>T (p.Arg528Trp) variant by whole-exome sequencing (WES) in five unrelated individuals with a core phenotype of global developmental delay, hypotonia, optic atrophy, axonal neuropathy, and hypertrophic cardiomyopathy. We also describe two families with biallelic variants in ATAD3A, including a homozygous variant in two siblings, and biallelic ATAD3A deletions mediated by nonallelic homologous recombination (NAHR) between ATAD3A and gene family members ATAD3B and ATAD3C. Tissue-specific overexpression of borR534W, the Drosophila mutation homologous to the human c.1582C>T (p.Arg528Trp) variant, resulted in a dramatic decrease in mitochondrial content, aberrant mitochondrial morphology, and increased autophagy. Homozygous null bor larvae showed a significant decrease of mitochondria, while overexpression of borWT resulted in larger, elongated mitochondria. Finally, fibroblasts of an affected individual exhibited increased mitophagy. We conclude that the p.Arg528Trp variant functions through a dominant-negative mechanism that results in small mitochondria that trigger mitophagy, resulting in a reduction in mitochondrial content. ATAD3A variation represents an additional link between mitochondrial dynamics and recognizable neurological syndromes, as seen with MFN2, OPA1, DNM1L, and STAT2 mutations.


PLOS Biology | 2015

A voltage-gated calcium channel regulates lysosomal fusion with endosomes and autophagosomes and is required for neuronal homeostasis.

Xuejun Tian; Upasana Gala; Yongping Zhang; Weina Shang; Sonal Nagarkar Jaiswal; Alberto di Ronza; Manish Jaiswal; Shinya Yamamoto; Hector Sandoval; Lita Duraine; Marco Sardiello; Roy V. Sillitoe; Kartik Venkatachalam; Heng-Yu Fan; Hugo J. Bellen; Chao Tong

Autophagy helps deliver sequestered intracellular cargo to lysosomes for proteolytic degradation and thereby maintains cellular homeostasis by preventing accumulation of toxic substances in cells. In a forward mosaic screen in Drosophila designed to identify genes required for neuronal function and maintenance, we identified multiple cacophony (cac) mutant alleles. They exhibit an age-dependent accumulation of autophagic vacuoles (AVs) in photoreceptor terminals and eventually a degeneration of the terminals and surrounding glia. cac encodes an α1 subunit of a Drosophila voltage-gated calcium channel (VGCC) that is required for synaptic vesicle fusion with the plasma membrane and neurotransmitter release. Here, we show that cac mutant photoreceptor terminals accumulate AV-lysosomal fusion intermediates, suggesting that Cac is necessary for the fusion of AVs with lysosomes, a poorly defined process. Loss of another subunit of the VGCC, α2δ or straightjacket (stj), causes phenotypes very similar to those caused by the loss of cac, indicating that the VGCC is required for AV-lysosomal fusion. The role of VGCC in AV-lysosomal fusion is evolutionarily conserved, as the loss of the mouse homologues, Cacna1a and Cacna2d2, also leads to autophagic defects in mice. Moreover, we find that CACNA1A is localized to the lysosomes and that loss of lysosomal Cacna1a in cerebellar cultured neurons leads to a failure of lysosomes to fuse with endosomes and autophagosomes. Finally, we show that the lysosomal CACNA1A but not the plasma-membrane resident CACNA1A is required for lysosomal fusion. In summary, we present a model in which the VGCC plays a role in autophagy by regulating the fusion of AVs with lysosomes through its calcium channel activity and hence functions in maintaining neuronal homeostasis.


eLife | 2016

Loss of Frataxin induces iron toxicity, sphingolipid synthesis, and Pdk1/Mef2 activation, leading to neurodegeneration

Kuchuan Chen; Guang Lin; Nele A. Haelterman; Tammy Szu-Yu Ho; Tongchao Li; Zhihong Li; Lita Duraine; Brett H. Graham; Manish Jaiswal; Shinya Yamamoto; Matthew N. Rasband; Hugo J. Bellen

Mutations in Frataxin (FXN) cause Friedreich’s ataxia (FRDA), a recessive neurodegenerative disorder. Previous studies have proposed that loss of FXN causes mitochondrial dysfunction, which triggers elevated reactive oxygen species (ROS) and leads to the demise of neurons. Here we describe a ROS independent mechanism that contributes to neurodegeneration in fly FXN mutants. We show that loss of frataxin homolog (fh) in Drosophila leads to iron toxicity, which in turn induces sphingolipid synthesis and ectopically activates 3-phosphoinositide dependent protein kinase-1 (Pdk1) and myocyte enhancer factor-2 (Mef2). Dampening iron toxicity, inhibiting sphingolipid synthesis by Myriocin, or reducing Pdk1 or Mef2 levels, all effectively suppress neurodegeneration in fh mutants. Moreover, increasing dihydrosphingosine activates Mef2 activity through PDK1 in mammalian neuronal cell line suggesting that the mechanisms are evolutionarily conserved. Our results indicate that an iron/sphingolipid/Pdk1/Mef2 pathway may play a role in FRDA. DOI: http://dx.doi.org/10.7554/eLife.16043.001


Neuron | 2014

A TRPV Channel in Drosophila Motor Neurons Regulates Presynaptic Resting Ca2+ Levels, Synapse Growth, and Synaptic Transmission

Ching-On Wong; Kuchuan Chen; Yong Qi Lin; Yufang Chao; Lita Duraine; Zhongmin Lu; Wan Hee Yoon; Jeremy M. Sullivan; Geoffrey T. Broadhead; Charlotte J. Sumner; Thomas E. Lloyd; Gregory T. Macleod; Hugo J. Bellen; Kartik Venkatachalam

Presynaptic resting Ca(2+) influences synaptic vesicle (SV) release probability. Here, we report that a TRPV channel, Inactive (Iav), maintains presynaptic resting [Ca(2+)] by promoting Ca(2+) release from the endoplasmic reticulum in Drosophila motor neurons, and is required for both synapse development and neurotransmission. We find that Iav activates the Ca(2+)/calmodulin-dependent protein phosphatase calcineurin, which is essential for presynaptic microtubule stabilization at the neuromuscular junction. Thus, loss of Iav induces destabilization of presynaptic microtubules, resulting in diminished synaptic growth. Interestingly, expression of human TRPV1 in Iav-deficient motor neurons rescues these defects. We also show that the absence of Iav causes lower SV release probability and diminished synaptic transmission, whereas Iav overexpression elevates these synaptic parameters. Together, our findings indicate that Iav acts as a key regulator of synaptic development and function by influencing presynaptic resting [Ca(2+)].


Developmental Cell | 2016

WAC Regulates mTOR Activity by Acting as an Adaptor for the TTT and Pontin/Reptin Complexes

Gabriela David-Morrison; Zhen Xu; Yan Ning Rui; Wu Lin Charng; Manish Jaiswal; Shinya Yamamoto; Bo Xiong; Ke Zhang; Hector Sandoval; Lita Duraine; Zhongyuan Zuo; Sheng Zhang; Hugo J. Bellen

The ability to sense energy status is crucial in the regulation of metabolism via the mechanistic Target of Rapamycin Complex 1 (mTORC1). The assembly of the TTT-Pontin/Reptin complex is responsive to changes in energy status. Under energy-sufficient conditions, the TTT-Pontin/Reptin complex promotes mTORC1 dimerization and mTORC1-Rag interaction, which are critical for mTORC1 activation. We show that WAC is a regulator of energy-mediated mTORC1 activity. In a Drosophila screen designed to isolate mutations that cause neuronal dysfunction, we identified wacky, the homolog of WAC. Loss of Wacky leads to neurodegeneration, defective mTOR activity, and increased autophagy. Wacky and WAC have conserved physical interactions with mTOR and its regulators, including Pontin and Reptin, which bind to the TTT complex to regulate energy-dependent activation of mTORC1. WAC promotes the interaction between TTT and Pontin/Reptin in an energy-dependent manner, thereby promoting mTORC1 activity by facilitating mTORC1 dimerization and mTORC1-Rag interaction.


Developmental Cell | 2018

Ari-1 Regulates Myonuclear Organization Together with Parkin and Is Associated with Aortic Aneurysms

Kai Li Tan; Nele A. Haelterman; Callie S. Kwartler; Ellen S. Regalado; Pei-Tseng Lee; Sonal Nagarkar-Jaiswal; Dong Chuan Guo; Lita Duraine; Michael F. Wangler; Michael J. Bamshad; Deborah A. Nickerson; Guang Lin; Dianna M. Milewicz; Hugo J. Bellen

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Hugo J. Bellen

Baylor College of Medicine

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Manish Jaiswal

Baylor College of Medicine

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Shinya Yamamoto

Baylor College of Medicine

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Hector Sandoval

Baylor College of Medicine

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Bo Xiong

Baylor College of Medicine

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Kartik Venkatachalam

University of Texas Health Science Center at San Antonio

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Ke Zhang

Baylor College of Medicine

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Kuchuan Chen

Baylor College of Medicine

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Yong Qi Lin

Baylor College of Medicine

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Gabriela David

Baylor College of Medicine

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