Developing and applying computational resources for biochemistry education

被引:2
|
作者
Craig, Paul A. [1 ]
机构
[1] Rochester Inst Technol, Sch Chem & Mat Sci, Rochester, NY 14623 USA
基金
美国国家科学基金会;
关键词
computational biology; genomics proteomics bioinformatics; integration of research into undergraduate teaching; molecular visualization; using simulation and internet resources for teaching; CATALYTIC SITE ATLAS; DATABASE;
D O I
10.1002/bmb.21347
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Biochemistry is about structure and function, but it is also about data and this is where computers come in. From my time as a graduate student and post doc, whenever I encountered data I thought, "I can work this up by hand, but I think a computer could do a better job." Since that time, I have been working at the interface of biochemistry and computers, by attracting talented students and collaborating with colleagues with complementary skills. This has resulted in several exciting projects: a simulation of 2D electrophoresis and tandem mass spectrometry, the human visualization project, and two different programs that enable biochemists to search protein structures for enzyme active sites: ProMOL () and Moltimate (). The human side of software development for education involved finding the right students and colleagues, communicating effectively across disciplines, building and managing effective teams and the importance of serendipity throughout the process.
引用
收藏
页码:579 / 584
页数:6
相关论文
共 50 条
  • [21] Developing education and training in undergraduate level biochemistry laboratories in Turkiye and Northern Cyprus
    Semsi, R.
    Dincel, A. Sepici
    FEBS OPEN BIO, 2024, 14 : 516 - 516
  • [22] Working with the patient voice: developing teaching resources for interprofessional education
    Kilminster, Sue
    Fielden, Shelley
    CLINICAL TEACHER, 2009, 6 (04): : 265 - 268
  • [23] Developing Online Construction Technology Resources in Tectonic Design Education
    Ham, Jeremy J.
    Schnabel, Marc Aurel
    Datta, Sambit
    ECAADE 2012, VOL 1: DIGITAL PHYSICALITY, 2012, : 135 - 142
  • [24] Computational biochemistry - Models of transition
    Stubbe, JoAnne
    NATURE, 2007, 448 (7155) : 762 - 763
  • [25] New challenges in computational biochemistry
    Honig, B
    PACIFIC SYMPOSIUM ON BIOCOMPUTING '97, 1996, : 21 - 24
  • [26] Plugged and unplugged activities in childhood education in developing computational thinking
    da Silva Ticon, Sabrina Cota
    de Abreu Mol, Antonio Carlos
    Legey, Ana Paula
    DIALOGIA, 2022, (40):
  • [27] Computational chemistry in a biochemistry curriculum
    Smith, JM
    FASEB JOURNAL, 2002, 16 (04): : A363 - A363
  • [28] Developing Computational Thinking in Basic School: Resources from Mathematics Teachers in Portugal
    Dos Santos Dos Santos, Jose Manuel
    Almeida Pereira Abar, Celina Aparecida
    Vieira de Almeida, Marcio
    Lavicza, Zsolt
    PERSPECTIVES AND TRENDS IN EDUCATION AND TECHNOLOGY, ICITED 2022, 2023, 320 : 131 - 141
  • [29] Applying computational methods to analyze trends and themes in Library and Information Science Education
    Cen, Mengping
    EDUCATION AND INFORMATION TECHNOLOGIES, 2024,
  • [30] BIOCHEMISTRY IN DEVELOPING-COUNTRIES
    CHUGHTAI, MID
    TRENDS IN BIOCHEMICAL SCIENCES, 1977, 2 (08) : N169 - N170