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&lt;div class="ed_title01">&lt;span style="font-size:110%;">Ching-Wei Luo&lt;a href="https://orcid.org/0000-0003-3956-2935" id="1-2" rel="noopener noreferrer" target="_blank" title="oid(開啟新視窗)">&lt;img alt="oid" src="/userfiles/dlsch/images/20260316090416127.png">&lt;/a>&lt;/span>&lt;/div>&#xd;
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&lt;div class="ed_txt">&lt;span style="font-size:110%;">&lt;img alt="phone" src="/userfiles/dlsch/images/20260316113711693.png"> 02-2826-7185／lab: ext. 65779&lt;br>&#xd;
&lt;img alt="mail" src="/userfiles/dlsch/images/20260316113732276.png"> &lt;a href="mailto:luocw@nycu.edu.tw" id="1-3" title="luocw@nycu.edu.tw">luocw@nycu.edu.tw&lt;/a>&lt;br>&#xd;
&lt;img alt="address" src="/userfiles/dlsch/images/20260316113722447.png"> 傳統醫學大樓甲棟1樓 R111&lt;br>&#xd;
&lt;img alt="lab" src="/userfiles/dlsch/images/20260316142704605.png"> &lt;a href="https://sites.google.com/nycu.edu.tw/luo-lab/" id="1-4" rel="noreferrer noopener" target="_blank" title="實驗室網頁(開啟新視窗)">實驗室網頁&lt;/a>&lt;/span>&lt;/div>&#xd;
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&lt;div class="ed-model18-title-text">經歷&lt;/div>&#xd;
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	&lt;li>&lt;span style="font-size:110%;">Feb, 2017-present 國立陽明交通大學 生命科學系暨基因體科學研究所 教授&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Aug, 2010-Jan, 2017 國立陽明大學 生命科學系暨基因體科學研究所 副教授&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Aug, 2006-Jul, 2010 國立陽明大學 生命科學系暨基因體科學研究所 助理教授&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Nov, 2005-Jul, 2006 國立陽明大學 生命科學系 助理教授&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">May 2002-Oct, 2005 Stanford Univ. Medical Center 博士後研究員&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Jul, 2001-Apr, 2002 中央研究院 生物化學所 博士後研究員&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Jan, 2001-Jun, 2001 國立臺灣大學 生化科學所 博士後研究員&lt;/span>&lt;/li>&#xd;
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&lt;div class="ed-model18-title-text">學歷&lt;/div>&#xd;
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	&lt;li>&lt;span style="font-size:110%;">Sep, 1996-Dec, 2000 國立臺灣大學 生化科學研究所 博士&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Sep, 1992-Jun, 1994 國立臺灣大學 生化科學研究所 碩士&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Sep, 1988-Jun, 1992 國立臺灣大學 農業化學系 學士&lt;/span>&lt;/li>&#xd;
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&lt;div class="ed-model18-title-text">專業領域&lt;/div>&#xd;
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&lt;div>&lt;span style="font-size:110%;">間質幹細胞分化機轉、生殖系統生理與癌症、激素或細胞因子藥物開發、訊息傳遞等分子內分泌學&lt;/span>&lt;/div>&#xd;
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&lt;div class="ed-model18-title-text">教授科目&lt;/div>&#xd;
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	&lt;li>&lt;span style="font-size:110%;">生物學/生物學實驗&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">生科總論&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">分子生物學&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">論文閱讀與分析方法&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">生命科學技術&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">生命科學教學&lt;/span>&lt;/li>&#xd;
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&lt;div class="ed-model18-title-text">研究方向&lt;/div>&#xd;
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&lt;div>&lt;span style="font-size:110%;">激素或細胞因子是主導各種生理反應的重要分子，一直以來都是生醫研究和藥物開發的重點標的。本實驗室的研究重點有二：(1)致力於以分子內分泌學的技術來探討蛋白質類的激素和細胞因子如何透過對應受體的整合訊息去影響生理反應、疾病 (如癌症等) 或幹細胞分化的相關進程；(2) 透過基因體學分析和遺傳工程重組技術，開發或設計新型的蛋白質激素和細胞因子，以評估其機轉、生物活性和成為蛋白質候選藥物的潛力。以下簡要說明幾個研究主題:&lt;br>&#xd;
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Project 1. TGF-beta/BMP 訊息對於幹細胞分化與細胞功能的影響。&lt;br>&#xd;
本實驗室利用解析細胞訊息、佐以原代細胞培養、小鼠生理模式、疾病相關體學分析等，探討TGF-beta/BMP家族的訊息對間質幹細胞 (mesenchymal stem cell)、生殖幹細胞與體細胞的功能影響。希望未來能在骨癒合、骨質疏鬆或不孕症等領域有其應用價值。&lt;br>&#xd;
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Project 2. 卵巢生理調控與生殖系統相關癌症的致病機轉&lt;br>&#xd;
卵巢除了是掌控生理和生殖的重要器官之外，其衍生癌症也是婦科癌症中致死率最高且復發率最高的癌種。我們的研究策略是利用基因體分析，找出在卵巢週期或癌症病程中具有明顯變化的蛋白激素或受體基因，進而設計細胞模式、原代細胞實驗以操控細胞訊息與基因表現、再佐以小鼠活體驗証等，藉此了解特定的基因功能和卵巢癌致病機轉。&lt;br>&#xd;
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Project 3. 開發新型的蛋白質激素或候選藥物&lt;br>&#xd;
蛋白質型藥物具有比一般化學藥物更高的受體結合專一度，因此具有極佳的生理相容性和極低副作用。本實驗室的策略是利用重組和突變等技術改良具有蛋白質型藥物潛力的激素或細胞因子，試圖克服其折疊效率低和生理半衰期短的缺點，並佐以細胞訊息分析和小鼠實驗評估其作為候選藥物的潛力。目前的研究重點在胱胺酸結狀蛋白 (cystine-knot protein) 系列，例如長效型血管內皮細胞生長因子已進入專利審查階段。&lt;/span>&lt;/div>&#xd;
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&lt;div class="ed-model18-title-text">代表著作&lt;/div>&#xd;
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	&lt;li>&lt;span style="font-size:110%;">Wang YW, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2025) Unveiling the signal valve specifically tuning the TGF-β1 suppression of osteogenesis: Mediation through a SMAD1-SMAD2 complex. Cell Communication and Signaling.Jan 22;23(1):38(&lt;a href="https://pubmed.ncbi.nlm.nih.gov/39844165/" id="1-5" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wang YW, Lin WY, Wu CH, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2022) Unveiling the transcriptomic landscape and the potential antagonist feedback mechanisms of TGF-ß superfamily signaling module in bone and osteoporosis. Cell Communication and Signaling. Nov 28;20(1):190(&lt;a href="https://pubmed.ncbi.nlm.nih.gov/36443839/" id="1-6" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wang YW, Wu CH, Lin TY, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2021) Expression profiling of ovarian BMP antagonists reveals the potential interaction between TWSG1 and the chordin subfamily in the ovary. Molecular and Cellular Endocrinology.(&lt;a href="https://pubmed.ncbi.nlm.nih.gov/34517078/" id="1-7" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)(&lt;a href="https://www.sciencedirect.com/science/article/pii/S0303720721003014?via%3Dihub" id="1-8" rel="noreferrer noopener" target="_blank" title="Share link(開啟新視窗)">Share link&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wu FJ, Wang YW, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2021) Human bone morphogenetic protein 8A promotes expansion and prevents apoptosis of cumulus cells in vitro. Molecular and Cellular Endocrinology.(&lt;a href="https://pubmed.ncbi.nlm.nih.gov/33338549/" id="1-9" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)(&lt;a href="https://www.sciencedirect.com/science/article/pii/S0303720720304238" id="1-10" rel="noreferrer noopener" target="_blank" title="Share link(開啟新視窗)">Share link&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wu FJ, Wang YW, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2020) Human BMP8A suppresses luteinization of rat granulosa cells via the SMAD1/5/8 pathway. Reproduction. Mar;159(3):315-324. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/31940275/" id="1-11" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Kuo CL, Jiang ZY, Wang YW, Lin TY, Huang WL, Wu FJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2019) In vivo selection reveals autophagy promotes adaptation of metastatic ovarian cancer cells to abdominal microenvironment. Cancer Science. Aug 5. doi: 10.1111/cas.14162. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/31385416/" id="1-12" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wu FJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2017) Discovery of spermatogenic activators: a lesson from bone morphogenetic protein 8. Oncotarget. Editorial 7;8(49): 84641-84642. doi: 10.18632/ oncotarget.21597.&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wu FJ, Lin TY, Sung LY, Chang WF, Wu PC, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2017) BMP8A sustains spermatogenesis by activating both SMAD1/5/8 and SMAD2/3 in spermatogonia. Science Signaling. 10 (477). pii: eaal1910. doi: 10.1126/scisignal.aal1910.&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Huang WL, Li Z, Lin TY, Wang SW, Wu FJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2016) Thyrostimulin-TSHR signaling promotes the proliferation of NIH:OVCAR-3 ovarian cancer cells via trans-regulation of the EGFR pathway. Scientific Reports. 6:27471. doi: 10.1038/srep27471 (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/27273257/" id="1-13" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lin TY, Wu FJ, Chang CL, Li Z, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2016) NMU signaling promotes endometrial cancer cell progression by modulating adhesion signaling. Oncotarget. 3. doi: 10.18632/oncotarget.7169. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/26849234/" id="1-14" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lin TY, Huang WL, Lee WY, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2015) Identifying a Neuromedin U Receptor 2 Splice Variant and Determining Its Roles in the Regulation of Signaling and Tumorigenesis In Vitro. PLoS One.10(8):e0136836. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/26317338/" id="1-15" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Hsu PJ, Wu FJ, Kudo M, Hsiao CL, Hsueh AJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>. (2014) A naturally occurring lgr4 splice variant encodes a soluble antagonist useful for demonstrating the gonadal roles of lgr4 in mammals. PLoS One, 9(9),e106804. doi: 10.1371/journal.pone.0106804. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/25188337/" id="1-16" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Deng C, Reddy P, Cheng Y, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Hsiao CL, Hsueh AJ*. (2013) Multi-functional norrin is a ligand for the LGR4 receptor. Journal of Cell Science, 126, 2060-2068. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/23444378/" id="1-17" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lin TY, Wu FJ, Lee WY, Hsiao CL, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2013) Ovarian regulation of neuromedin U and its local actions in the ovary, mediated through neuromedin U receptor 2. Am J Physiol Endocrinol Metab., 304, E800-9. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/23423171/" id="1-18" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lee WY, Wang CJ, Lin TY, Hsiao CL, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2013) CXCL17, an orphan chemokine, acts as a novel angiogenic and anti-inflammatory factor. Am J Physiol Endocrinol Metab., 304, E32-40. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/23115081/" id="1-19" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Hung WT, Wu FJ, Wang CJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2012) DAN (NBL1) Specifically Antagonizes BMP2 and BMP4 and Modulates the Actions of GDF9, BMP2, and BMP4 in the Rat Ovary. Biology of Reproduction. 86, 1-9. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/22357543/" id="1-20" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Tseng HC, Tang JB, Sudhakar Gandhi PS, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Ou CM, Tseng CJ, Lin HJ*, Chen YH*. (2012) Exclusive expression of a membrane-bound Spink3-interacting serine protease-like protein TESPL in mouse testis. Amino Acids. 42, 951-960. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/21811826/" id="1-21" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Ou CM, Lin SR, Lin HJ, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong>, Chen YH.* (2010) Exclusive expression of a membrane-bound Spink3-interacting serine protease-like protein TESPL in mouse testis. J Cell Biochem. 110, 620-629. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/20512923/" id="1-22" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Sun SC, Hsu PJ, Wu FJ, Li SH, Lu CH, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2010) Thyrostimulin, but not thyroid-stimulating hormone, acts as a paracrine regulator to activate thyroid-stimulating hormone receptor in the mammalian ovary. J Biol Chem. 285, 3758–3765 (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/19955180/" id="1-23" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>)- selected for Faculty of 1000 Medicine.&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Wang CJ, Hsu SH, Hung WT, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2009) Establishment of a chimeric reporting system for the universal detection and high-throughput screening of G protein-coupled receptors. Biosensors and Bioelectronics. 24, 2298-2304. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/19135356/" id="1-24" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Cho CC, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Hsu CH. (2008) Crystallization and preliminary X-ray diffraction analysis of PAT, an acetyltransferase from Sulfolobus solfataricus. Acta Crystallogr Sect F Struct Biol Cryst Commun. F64, 1049–1051. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/18997339/" id="1-25" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Zhang JV, Jahr H, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Klein C, Van Kolen K, Ver Donck L, De A, Baart E, Li J, Moechars D, Hsueh AJ. (2008) Obestatin induction of early response gene expression in gastrointestinal and adipose tissues and the mediatory role of GPR39. Mol Endocrinol. 22, 1464-1475. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/18337590/" id="1-26" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Dai L, Dewey EM, Zitnan D, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Honegger HW, Adams ME. (2008) Identification, developmental expression, and functions of bursicon in the tobacco hawkmoth, Manduca sexta. Journal of comparative neurology. 506, 759-774. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/18076057/" id="1-27" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Hsu SH, &lt;strong>&lt;u>Luo CW*&lt;/u>&lt;/strong> (2007) Molecular Dissection of G protein Preference Using G{alpha}s Chimeras Reveals Novel Ligand Signaling of GPCRs. Am J Physiol Endocrinol Metab. 293, E1021-9. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/17652154/" id="1-28" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lin HJ, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Wang CY, Chen YH. (2006) Epitope topology and removal of mouse acrosomal plasma membrane by P12-targeted immunoaggregation. Biochemical and biophysical research communications. 349, 284-288. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/16934746/" id="1-29" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">&lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Hsueh AJ. (2006) Genomic analyses of the evolution of LGR genes. Chang Gung Medical Journal. 29, 2-8. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/16642723/" id="1-30" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Zhang JV, Ren PG, Avsian-Kretchmer O, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Rauch R, Klein C, Hsueh AJ. (2005) Obestatin, a peptide encoded by the ghrelin gene, opposes ghrelin's effects on food intake. Science. 310, 996-999. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/16284174/" id="1-31" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Mazerbourg S, Sangkuhl K, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Sudo S, Klein C, Hsueh AJ. (2005) Identification of receptors and signaling pathways for orphan bone morphogenetic protein/growth differentiation factor ligands based on genomic analyses. J Biol Chem. 280, 32122-32132. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/16049014/" id="1-32" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">&lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Dewey EM, Sudo S, Ewer J, Hsu SY, Honegger HW, Hsueh AJ. (2005) Bursicon, the insect cuticle-hardening hormone, is a heterodimeric cystine knot protein that activates G protein-coupled receptor LGR2. Proc Natl Acad Sci U S A. 102, 2820-2825. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/15703293/" id="1-33" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">&lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Pisarska MD, Hsueh AJ. (2005) Identification of a stanniocalcin paralog, STC2, in fish and the paracrine actions of STC2 in the mammalian ovary. Endocrinology. 146, 469-476. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/15486227/" id="1-34" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Lin HJ, Lee CM, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Chen YH. (2005) Functional Preservation of duplicated pair for RSVS III gene in the REST locus of rat 3q42. Biochem Biophys Res. Commun. 326, 355-363. NSC92-2311-B-002-019 and NSC92-2311-B-001-089. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/15582586/" id="1-35" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">Morita H, Mazerbourg S, Bouley DM, &lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Kawamura K, Yoshimitsu K, Baribault H, Tian H, Hsueh AJ. (2004) Neonatal lethality of LGR5 null mice is associated with ankyloglossia and gastrointestinal distension. Mol Cell Biol. 22, 9736-9743. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/15509778/" id="1-36" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">&lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Kawamura K, Klein C, Hsueh AJ. (2004) Paracrine regulation of ovarian granulosa cell differentiation by stanniocalcin 1 (STC1): mediation through specific STC1 receptors. Mol Endocrinol. 18, 2085-2096. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/15131261/" id="1-37" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
	&lt;li>&lt;span style="font-size:110%;">&lt;strong>&lt;u>Luo CW&lt;/u>&lt;/strong>, Lin HJ, Gopinath SC, Chen YH. (2004) Distinction of sperm-binding site and reactive site for trypsin inhibition on p12 secreted from the accessory sex glands of male mice. Biol Reprod. 70, 965-971. NSC91-2311-B001-076/NSC91-2311-B002-049. (&lt;a href="https://pubmed.ncbi.nlm.nih.gov/14645103/" id="1-38" rel="noreferrer noopener" target="_blank" title="PubMed(開啟新視窗)">PubMed&lt;/a>).&lt;/span>&lt;/li>&#xd;
&lt;/ol>&#xd;
&lt;/div>&#xd;
&lt;/div>&#xd;
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