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<CourseUnit xmlns="http://www.manchester.ac.uk/CUICourseUnitDetails" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.manchester.ac.uk/CUICourseUnitDetails.xsd">
  <UnitCode Applicant="Y" Label="Unit code" Student="Y">
    <Code>CHEM30712</Code>
  </UnitCode>
  <UnitTitle Applicant="Y" Label="Unit title" Student="Y">
    <Title>Biosynthesis and Bioenergetics</Title>
  </UnitTitle>
  <MaxUnits Applicant="Y" Label="Credit rating" Student="Y">
    <Units>10</Units>
  </MaxUnits>
  <TeachingPeriods Applicant="Y" Label="Teaching period(s)" Student="Y">
    <Period>Semester 2</Period>
  </TeachingPeriods>
  <AcademicCareer Applicant="Y" Label="Academic career" Student="Y">
    <Value>Undergraduate</Value>
  </AcademicCareer>
  <UnitLevel Applicant="Y" Label="Unit level" Student="Y">
    <Level>Level 3</Level>
  </UnitLevel>
  <StaffList Applicant="Y" Label="Teaching staff" RoleLabel="Course Unit Role" Student="Y">
    <StaffMember>
      <Name>Neil Dixon</Name>
      <Role>Unit coordinator</Role>
    </StaffMember>
  </StaffList>
  <OfferedBy Applicant="Y" Label="Offered by" Student="Y">
    <OrganisationList>
      <Organisation>
        <OrgName>Department of Chemistry</OrgName>
      </Organisation>
    </OrganisationList>
    <GroupList>
      <Group>
        <GroupName></GroupName>
      </Group>
    </GroupList>
    <FheqLevels>
      <FheqLevel>
        <LevelNumber>1</LevelNumber>
        <LevelName>FHEQ level (Framework for Higher Education Qualifications) ' Last part of a Bachelors ' </LevelName>
      </FheqLevel>
    </FheqLevels>
    <Ects>
      <MaxUnits>European Credit Transfer &amp; Accumulation System Rating :   5.0</MaxUnits>
    </Ects>
  </OfferedBy>
  <MarketingOverview Applicant="Y" Label="Marketing Course unit overview" Student="">
    <Content>&lt;div&gt;&lt;p&gt;The unit covers various aspects of biosynthesis and bioenergetics. The course will be delivered by 4 lecturers – (i) Dr. Neil Dixon (course convener); (ii) Prof. David Leys; (iii) Dr Clare Megarity and (iv) Prof. Sam Hay. The course will involve a mix of 6 formal lectures and workshops – all in-person - from each of the 4 lecturers, in which the students will be able to discuss aspects of the course with the relevant lecturer(s) and thereby obtain clarification on any specific scientific issues.&amp;nbsp;&lt;/p&gt;&lt;/div&gt;</Content>
  </MarketingOverview>
  <UnitOverview Applicant="" Label="Course unit overview" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;The unit covers various aspects of biosynthesis and bioenergetics. The course will be delivered by 4 lecturers – (i) Dr. Neil Dixon (course convener); (ii) Prof. David Leys; (iii) Dr Clare Megarity and (iv) Prof. Sam Hay. The course will involve a mix of 6 formal lectures and workshops – all in-person - from each of the 4 lecturers, in which the students will be able to discuss aspects of the course with the relevant lecturer(s) and thereby obtain clarification on any specific scientific issues.&amp;nbsp;&lt;/p&gt;&lt;/div&gt;</Content>
  </UnitOverview>
  <Aims Applicant="Y" Label="Aims" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;The unit aims to:&lt;/p&gt;&lt;p&gt;Provide the students with important information relevant to understanding the living cell as a chemical reactor, focussing on the chemistry of biosynthesis and bioenergetics underpinning this. The chemistry of key metabolic functions including energy-generating processes such as glycolysis, the citric acid cycle, respiration, photosynthesis as well as aspects regarding control of metabolic flux in the cell will be looked at in detail. The course will include a detailed look at information flow and molecular machinery of the cell.&amp;nbsp;&lt;/p&gt;&lt;/div&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </Aims>
  <LearningOutcomes Applicant="Y" Label="Learning outcomes" Student="Y">
    <Content>&lt;p&gt;On successful completion of the course students should be able to: (i) have an understanding of the working of the aerobic respiratory chain and how this leads to generation of energy in the cell in the form of ATP; (ii) gain knowledge of how important cellular pathways (including glycolysis and the Krebs cycle) work and how these pathways lead to energy generation and to synthesis of important molecules including fatty acids, cholesterol and amino acids; (iii) understand the general mechanism by which light-driven photosynthesis works along with other aspects of biological photochemistry; and (iv) develop knowledge of the crucial cellular functions of the molecular machinery in the cell.&amp;nbsp;&lt;/p&gt;</Content>
  </LearningOutcomes>
  <Knowledge Applicant="Y" Label="Knowledge and understanding" Student="Y">
    <Content></Content>
  </Knowledge>
  <IntellectualSkills Applicant="Y" Label="Intellectual skills" Student="Y">
    <Content></Content>
  </IntellectualSkills>
  <PracticalSkills Applicant="Y" Label="Practical skills" Student="Y">
    <Content></Content>
  </PracticalSkills>
  <TransferableSkills Applicant="Y" Label="Transferable skills and personal qualities" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;Problem solving skills: (i) analysis of mechanisms of metabolic pathways and their importance to the cell; (ii) determination of biochemical reaction mechanisms; (iii) Development of mathematical and numerical skills relating to analysis of data; (iv) communication skills (through written and oral communication) and further development of understanding of chemical and biochemical terminology.&amp;nbsp;&lt;/p&gt;&lt;/div&gt;</Content>
  </TransferableSkills>
  <EmployabilitySkillsList Applicant="Y" Label="Employability skills" Student="Y">
    <Skill>
      <SkillId></SkillId>
      <SkillDescription></SkillDescription>
    </Skill>
  </EmployabilitySkillsList>
  <Syllabus Applicant="Y" Label="Syllabus" Student="Y">
    <Content>&lt;p&gt;The course syllabus involves 6 lectures/workshops delivered by each of the 4 lecturers on the course. These will be from (i) Prof. David Leys (Bioenergetics and respiration, and Primary metabolism – including glycolysis, the Krebs cycle, biological pathways and an introduction to mechanisms for flux control, and biofuels; (ii) Prof. Neil Dixon (Molecular machinery of the cell); (iii) Prof. Sam Hay (Biological photochemistry); and Dr Clare Megarity (Biological respiration/bioelectrochemistry). The final session delivered by each of the lecturers will take the form of a workshop in which the students will be able to ask questions in order to clarify any material presented by the lecturers.&amp;nbsp;&lt;/p&gt;</Content>
  </Syllabus>
  <TeachingMethods Applicant="Y" Label="Teaching and learning methods" Student="Y">
    <Content></Content>
  </TeachingMethods>
  <AssessmentMethods Applicant="Y" Label="Assessment methods" Student="Y">
    <IntroText> </IntroText>
    <Method>
      <MethodId>1</MethodId>
      <MethodName>Written exam</MethodName>
      <MethodWeight>100%</MethodWeight>
    </Method>
  </AssessmentMethods>
  <FeedbackMethods Applicant="Y" Label="Feedback methods" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;Feedback mechanisms will include direct interactions with students in the lectures as well as in the final workshops (the 6th “lecture” from each of the four lecturers) where the students will be encouraged to ask questions to the relevant lecturers to enable them to develop a fuller understanding of lecture material presented. Students will also have access to the relevant lecturers following completion of the course through email, again in order to discuss aspects of biological chemistry presented in the lectures and workshops.&lt;/p&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;&lt;/div&gt;</Content>
  </FeedbackMethods>
  <RequirementsList Applicant="Y" Label="Pre/co-requisites" Student="Y">
    <Requirement>
      <UnitCode></UnitCode>
      <UnitTitle></UnitTitle>
      <RequirementType></RequirementType>
      <Description></Description>
    </Requirement>
    <AdditionalRequirement></AdditionalRequirement>
  </RequirementsList>
  <AcademicPrograms Applicant="Y" Label="Academic programmes" Student="Y">
    <AcademicProgram>
      <Program></Program>
      <Plan></Plan>
      <Level></Level>
      <Requirement></Requirement>
    </AcademicProgram>
  </AcademicPrograms>
  <FreeChoice Applicant="Y" Label="Available as a free choice unit?" Student="Y">
    <Content>N</Content>
  </FreeChoice>
  <Accreditation Applicant="Y" Label="Accreditation" Student="Y">
    <Content></Content>
  </Accreditation>
  <RecommendedReading Applicant="Y" Label="Recommended reading" Student="Y">
    <Content>&lt;p&gt;The recommended text for this course is Voet &amp;amp; Voet Biochemistry, 4th Edition, Wiley. Earlier editions of this text also contain the relevant content.&amp;nbsp;&lt;/p&gt;</Content>
  </RecommendedReading>
  <StudyHours Applicant="Y" Label="Study hours" Student="Y">
    <IntroText> </IntroText>
    <ScheduledHours Applicant="Y" Label="Scheduled activity hours" Student="Y">
      <ActivityHours>
        <ActivityType>Assessment written exam</ActivityType>
        <Hours>2</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>Lectures</ActivityType>
        <Hours>24</Hours>
      </ActivityHours>
    </ScheduledHours>
    <PlacementHours Applicant="Y" Label="Placement hours" Student="Y">
      <ActivityHours>
        <ActivityType></ActivityType>
        <Hours>0</Hours>
      </ActivityHours>
    </PlacementHours>
    <TotalHours Applicant="Y" Label="Independent study hours" Student="Y">
      <Hours>74</Hours>
    </TotalHours>
  </StudyHours>
  <Notes Applicant="Y" Label="Additional notes" Student="Y">
    <Content></Content>
  </Notes>
</CourseUnit>
