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MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings
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MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

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Page 1: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

MCB 186CIRCADIAN BIOLOGY

Slides Lecture 2 Basic Properties of Circadian Clocks

September 27, 2006

J. W. Hastings

Page 2: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

DEFINITION of TERMS in CIRCADIAN BIOLOGY

GLOSSARY on COURSE WEB SITE and in TEXT BOOKS

Page 3: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

CIRCADIAN RHYTHMS - KEY PROPERTIES

(1) RHYTHMS CONTINUE IN THE ABSENCE OF LIGHT/DARK

CYCLES WITH PERIODS CLOSE TO BUT NOT EXACTLY 24H

exact period length is a function of environmental conditions

(2) TEMPERATURE ALSO AFFECTS CIRCADIAN PERIOD BUT MUCH

LESS SO THAN FOR TYPICAL BIOCHEMICAL REACTIONS. Cellular

compensation is postulated to be responsible

(3) PHASE can be RESET by LIGHT: ENTRAINED or SYNCHRONIZED to

DAILY LIGHT / DARK or OTHER ENVIRONMENTAL CYCLES

resetting does not need cycles: single exposures or pulses suffice

Page 4: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

RHYTHM IN HUMAN: LD & LL

Raster Plots:- Single, double, triple etc.- Modulo tau

Tau greater than 24h

Page 5: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

CIRCADIAN CLOCKS MAY BE VERY PRECISE DECOURSEY, 1961

Activity of squirrelTau less than 24h

Page 6: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PERIOD (Tau) DEPENDS on LIGHT INTENSITY

Page 7: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PERIOD (Tau) of CIRCADIAN RHYTHM DEPENDS on PERIOD (T=20) OF PRIOR L/D CYCLE

MOUSEPITTENDRIGH & DAAN

Page 8: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

DRUGS MAY ALSO HAVE an EFFECT ON PERIOD e.g., PROTEIN PHOSPHATASE INHIBITORS

Page 9: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

TEMPERATURE-COMPENSATED CIRCADIAN PERIOD IN VARIOUS ORGANISMS

Page 10: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

ENTRAINMENT OCCURS when ORGANISM is EXPOSED TO

LIGHT/DARK CYCLES

CAN BE CALLED SYNCHRONIZATION

Page 11: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

HUMAN CIRCADIAN ENTRAINMENTCHANGING PHASE OF L/D CYCLE CHANGES PHASE of RHYTHM

Page 12: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

ENTRAINMENT by L/D CYCLES in MONKEY DURING a FREE-RUN

MOORE-EDE ETAL

Page 13: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

Schematic depiction of entrainment by light: T constant, Tau changes

Page 14: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX ENTRAINMENT by 14 HR LD CYCLES, then DD or LL

Page 15: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

ENTRAINMENT by DIFFERENT LIGHT/DARK CYCLES and EFFECT of LIGHT INTENSITY on LIMITS of ENTRAINMENT

Page 16: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

APPARENT ENTRAINMENT by TEMP CYCLE is a DIRECT EFFECT

FLYING SQUIRREL DE COURSEY

Page 17: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

ENTRAINMENT is due to PHASE SHIFTS in CIRCADIAN RHYTHM

BUT PHASE SHIFTS do not REQUIRE FULL LIGHT/DARK CYCLES

A SINGLE “BRIEF” EXPOSURE TO LIGHT SUFFICES

Page 18: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX CELLS IN DD: PHASE SHIFT BY SINGLE LIGHT PULSESADVANCE OR DELAY DEPENDS ON TIME IN CYCLE

CONTROLIN DARK

LATE NIGHT PULSEPHASE ADVANCE

EARLY NIGHT PULSEPHASE DELAY

Page 19: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX LIGHT PHASE RESPONSE CURVE (PRC)

Page 20: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX LIGHT PHASE RESPONSE CURVE (the PRC)LIGHT PULSES GIVEN AT TIMES INDICATED

TIME 0 is theBEGINNING ofNIGHT PHASE

DEAD ZONEDAY PHASE

Page 21: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

HOW DOES ONE DISTINGUISH DELAYS from

ADVANCES?

GIVE a STRONGER(BRIGHTER) EXPOSURE to LIGHT

THIS RESULTS in a GREATER PHASE SHIFT - but in WHICH DIRECTION??

Page 22: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX PHASE ADVANCES BY LIGHT PULSES

Page 23: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

GONYAULAX ACTION SPECTRUM FOR PHASE SHIFTING BY 3 HOUR LIGHT EXPOSURES

Page 24: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PHASE RESPONSE CURVE DESCRIBED MOORE-EDE ETAL

Black is day phase

Page 25: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

SCHEMATIC PHASE RESPONSE CURVES (PRCs)

Page 26: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PULSES of ANISOMYCIN (protein synthesis inhibitor) CAUSE PHASE SHIFTS in Gonyaulax

Page 27: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PHASE SHIFTS BY ANISOMYCIN 0.3 M, 1 HOUR

Page 28: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

LONG DAYS (LIGHT PERIOD) VERSUS SHORT DAYS

LONG DAYS CAUSE BOTH DELAYS and ADVANCES

SHORT DAYS ONLY ONE or the OTHER

Phase angle (acrophase) differs with day length

Page 29: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

LONG & SHORT DAY PHASE SHIFTS in an ORGANISM with a CIRCADIAN TAU OF 24.5 hr

Page 30: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

ENTRAINMENT by T CYCLES with DIFFERENT PHOTOFRACTIONS

Short day

Long day

Page 31: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

DROSOPHILA ENTRAINMENT TO FULL LD CYCLES BLACK DOTS INDICATE PEAK TIMES OF ECLOSIONPITTENDRIGH

Page 32: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

SKELETON PHOTOPERIODS

TWO LIGHT EXPOSURES (e.g., 15 min, or 1 hr each) EVERY CYCLE

Longer dark interval (outside of 11-13) is self-selected as the night phase.

11-13 is the bistability region

Cycles can be different from 24 hrs.

Page 33: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

LONGER INTERVAL is ALWAYS SELECTED as NIGHT PHASE DROSOPHILA ECLOSION ACROPHASES with DIFFERENT INTERVALS for TWO-PULSE SKELETON PHOTOPERIODS

Pittendrigh

Page 34: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

BISTABILITY IN HAMSTER ACTIVITY RHYTHM ENTRAINMENT SKELETON PHOTOPERIOD 13.5:0.25:10:0.25 hrs

Page 35: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

SINGLE PULSES EVERY 24hSometimes called T-cycles

A single light pulse (e.g., 15 min, 1hr) every cycle will entrain a circadian rhythm.

Cycle may be =24h, longer or shorter than 24

Organism self selects location of light pulse

If tau is greater than 24 it will fall at late night

If tau is less than 24 it will fall at early night

Page 36: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

HAMSTER ACTIVITY RHYTHM is ENTRAINED by SINGLE LIGHT PULSES of CYCLE LENGTHS LONGER or SHORTER

THAN 24 h and PULSES ARE POSITIONED DIFFERENTLY

Page 37: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

HOW DO YOU EXPERIMENTALLY PROBE FOR MECHANISM?

ALTER CONDITIONS (temperature, light cycle)

APPLY INHIBITORS OR DRUGS (what kinds?)

ISOLATE MUTANTS (select for what?)

Page 38: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

DROSOPHILA CLOCK MUTANTS in the PERIOD (per) GENE

Page 39: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

PERIOD MUTANTS OF CYANOBACTERIA (kai GENE) KONDO ET AL.1995

Page 40: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

CIRCADIAN CLOCK GENES

1) DROSOPHILAper (PERIOD)tim (TIMELESS)

2) NEUROSPORAfrq (FREQUENCY)prd (PERIOD)

3) CYANOBACTERIAkai (CYCLE IN JAPANESE)

4) ARABIDOPSIStoc1 (TIMING OF CAB)

lhy (LATE ELONG HYPOCOTYL)

cca1 (CIRC CLOCK ASSOCIATED)

5) MOUSEclk (CLOCK)per1 (PERIOD)

6) HAMSTERtau (PERIOD)

Page 41: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

POSTULATED FEEDBACK LOOPS IN REGULATION OF CLOCK GENE EXPRESSION

ClockProtein

ClockProtein

| |P P

ClockGene

ClockmRNA

PositiveRegulators

Other ClockProteins

| |P P

ATP

Figure 1b

Page 42: MCB 186 CIRCADIAN BIOLOGY Slides Lecture 2 Basic Properties of Circadian Clocks September 27, 2006 J. W. Hastings.

CORE CLOCK COMPONENTS IN FEEDBACK LOOPS OF 3 SYSTEMS