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生物化学哲学博士

Doctor of Philosophy in Biochemistry

休斯顿大学

University of Houston

US美国

  • 学历文凭

    学历文凭

    Ph.D.

  • 专业院系

    专业院系

    Department of Biology and Biochemistry

  • 开学时间

    开学时间

  • 课程时长

    课程时长

  • 课程学费

    课程学费

    汇率提示

国际学生入学条件

Completion of a baccalaureate degree (B.S.) with a major in Biology, Biochemistry, or an equivalent discipline. You can apply to our programs before you complete your degree, provided you graduate before you enter the program. (NOTE: A prior M.S. is not a requirement to apply to our Ph.D. programs.)
Grade Point Average ≥ 3.0 / 4.0 (overall or for the last 60 hours of coursework completed).
The GRE is no longer required by our Ph.D. programs. If you decide to submit GRE scores, UH's Institutional Code is 6870.
Informative, coherent and well-written statement of purpose.
Three strong letters of recommendation.
English Language Proficiency Requirement. All applicants, regardless of citizenship status, must demonstrate proficiency in English to obtain admission. To fulfill this requirement, applicants must satisfy one of the following criteria:
a) Bachelor's degree (or higher) earned from a regionally accredited U.S. institution or at an institution at which English is the medium of instruction in the following countries: Australia, New Zealand, South Africa, the Bahamas, the United Kingdom, Ireland, Jamaica, Liberia, Trinidad, the Virgin Islands, Antigua and Barbuda, Dominica, Saint Lucia, Saint Vincent and the Grenadines, Barbados, Grenada, Turks and Caicos, and English-speaking Canadian provinces.
b) TOEFL. The minimum TOEFL score required is 79 for the internet-based test. The minimum TOEFL score for the new revised paper-based exam is: Reading 20, Listening 20, and Writing 20. TOEFL scores must be received directly from Educational Testing Service (ETS). UH's Institutional Code is 6870.
c) IELTS. The minimum IELTS score required is an overall score of 6.5. The testing agency should mail the official results directly to UH. No electronic IELTS are accepted.
d) Duolingo. A minimum score of 105 is required.
The minimum TOEFL score required is 79 for the internet-based test.
The minimum TOEFL score for the paper-based (pBT) exam is 550 or higher.
The minimum TOEFL score for the new revised paper-based exam is: Reading 20, Listening 20, and Writing 20.
The minimum IELTS score required is an overall score of a 6.5.
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  • 雅思总分:6.5
  • 托福网考总分:79
  • 托福笔试总分:550
  • 其他语言考试:Duolingo English Test - A minimum score of 105 is required.<br>Pearson Test of English (PTE) - An overall score of 53 or higher.

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课程简介

休斯敦大学生物与生物化学系的生物化学系致力于研究生命系统的生物化学和生物物理学。我们的研究活动是跨学科和多学科的,这转化为学科界面上的研究生培训。我们该部门当前的研究优势分为四个主题:<br> <br>结构和计算生物学/生物物理学-该主题包括阐明生物分子的三维结构以及它们与天然和设计的配体,机制相互作用的性质单分子水平的生物分子功能,蛋白质结构和功能的计算研究,计算机辅助药物设计,理论生物物理学,合成生物学和生物技术。这些研究的目标包括那些对于开发针对生物威胁因子(包括肉毒杆菌和霍乱毒素)的对策非常重要的
The Division of Biochemistry in the Department of Biology and Biochemistry at the University of Houston focuses on the study of the biochemistry and biophysics of living systems. Our research activities are highly inter- and multi-disciplinary which translates into graduate training at the disciplinary interfaces. Current research strengths in our Division fall into four themes:<br><br>Structural and Computational Biology/Biophysics - This theme includes the elucidation of the three dimensional structures of biological molecules and the nature of their interactions with natural and designed ligands, mechanisms of biomolecular function at the single molecule level, computational studies of protein structure and function, computer-aided drug design, theoretical biophysics, synthetic biology, and biotechnology. Targets for some of these studies include those important for the development of countermeasures against biological threat agents including botulinum and cholera toxins. Other researchers in this theme study protein transport channels, cell adhesion factors, protein biosynthesis machinery, nucleic acid microarrays, and RNA structure, function, and detection. <br><br>Microbiology - Genomics, membrane transport, quorum sensing and the basis of virulence are key areas of interest. The University has a next generation sequencing system (Solexa) that allows rapid re-sequencing of known bacterial genomes, comparison of closely related genomes, and transcriptional analysis. Software for rapid analysis of these types of data has been and is being developed. Comparisons of Streptococcus genomes are revealing the basis of virulence. Studies of Bacillus genomes are teaching us how spores of these organisms become highly resistant to various stresses, and how asymmetry is generated during development. Studies of transcription are revealing how gene expression is regulated temporally and spatially. In this regard, the role of Rho termination factor in global regulation and the response of bacteria to high levels of background radiation are of special interest. Electrophysiological techniques are used to decipher the molecular mechanisms of pore-forming proteins from a variety of organisms, with special emphasis on translocons used for the assembly of adhesins and pili needed for pathogen infections, and on porins involved in the uptake of antibiotics and extracellular signals controlling virulence.<br><br>Enzymology and Signaling - Multi-facet approaches are employed by several faculty members to delineate the structures, reaction mechanisms, and regulations of a wide range of enzymes essential to redox reactions, signal transductions, drug activations, detoxifications, gene regulations, translation, etc. These research laboratories are well equipped for biochemical, biophysical, computational, and molecular biological studies. A recently created focus is single-molecule detection of the protein synthesis process.<br><br>Nucleic Acids Biochemistry and Genomics - Research in this area is at the interface of chemistry and biological sciences. Array hybridization and mass spectrometric techniques are employed for bacterial and viral detection in response to needs generated by the biodefense and medical diagnostic communities. This includes ongoing efforts to develop novel Microarray BIOCHIP technologies and sensors utilizing retroreflectors. Single molecule methodologies are being employed to study complex systems such as ribosomes as well as the dynamics of model RNAs. Novel technologies for the synthesis of large quantities of siRNAs are being evaluated. Unique graphic capabilities provided by the Texas Learning and Computation Center are being used to understand the early history of the translational machinery and computational methods are being utilized to compare nucleic acids and to design hybridization probes of various types.
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