Optimizing structure determination

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Optimizing structure determination How many are we solving? What is the limit? Are we there yet? Why not? What are the biggest problems?

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Optimizing structure determination. How many are we solving? What is the limit? Are we there yet? Why not? What are the biggest problems?. How many are we solving?. http://asdp.bnl.gov/asda/Libraries/pdb_statis/latest/bml/ALS.html. Breaking it down. $$ → photons - PowerPoint PPT Presentation

Transcript of Optimizing structure determination

Page 1: Optimizing structure determination

Optimizing structure determination

How many are we solving?

What is the limit?

Are we there yet?

Why not?

What are the biggest problems?

Page 2: Optimizing structure determination

How many are we solving?http://asdp.bnl.gov/asda/Libraries/pdb_statis/latest/bml/ALS.html

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$$ → photons

photons → data

data → models

models → results

results → $$

Breaking it down

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Seconds Description Percent

104490 Assigned and available 91%

42093 Shutter open 40%

52684 Collecting (3026 images) 50%

51806 Something else 50%

Operational Efficiency“representative” 8.3.1 user

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Seconds Description Percent

51806 Something else 100%

247s 45 Mounting 22%

229s 37 Centering 16%

179s 109

Strategizing 38%

309s 37 Prepping 24%

Operational Efficiency“representative” 8.3.1 user

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Number Description Percent

446028 Images (~7 TB) 33%

2346 Data sets 47%

449 MAD/SAD (1:2) 19%

48 Published 2%

8.3.1 in 2003

Turning data into models

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Top producing beamlines of the world

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http://asdp.bnl.gov/asda/Libraries/pdb_statis/latest/bml/ALL.html

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28 operating US beamlines

~1011 ph/μm2 exposure limit

÷ 2x109 ph/μm2/s

~ 100,000 datasets/year

÷ 1324 str in 2003

~ 2% efficient

What is the limit?

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DVD data archive

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Elven Automation

Elves examine images andset-up data processing

Elves run…

mosflmscalasolve

mlpharedm

arp/warp

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Apr 6 – 24 at ALS 8.3.1

Elven Automation

27,686 images collected

148 datasets (15 MAD)

31 investigators

56 unique cells

5 KDa – 23 MDa asymmetric unit

0.94 – 32 Å resolution (3.2 Å)

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Apr 6 – 24 at ALS 8.3.1

Elven Automation

148 datasets

117 succeded

~3.5 (0.1-75) hours

31 failed

~61 (0-231) hours

2 / 15 MAD structures

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Overlaps

Signal to noise

Radiation Damage

Why do structures fail?

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avoidable overlaps

mosaicity

phi

dete

ctor

c*

b

c

a

Ewald sphere

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unavoidable overlaps

mosaicity

phi

dete

ctor

c*

b

c

a

Ewald sphere

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Overlaps

Signal to noise

Radiation Damage

Why do structures fail?

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MAD phasing simulation

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SAD phasing simulation

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Minimum required signal (MAD/SAD)

"#

)(3.1

fsitesDaMW

sd

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Is it Is it realreal, or is it , or is it MLFSOMMLFSOM??

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“We really need those

high-resolution spots”

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Incremental strategy

incremental_strategy.com merged.mtz auto.mat

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Overlaps

Signal to noise

Radiation Damage

Why do structures fail?

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Distention of cryo with dose

before

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Distention of cryo with dose

after

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Water ring shiftsaturated sucrose in 250mM WO4

0 MGy

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Water ring shiftsaturated sucrose in 250mM WO4

184 MGy

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Water ring shift

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Resolution (Ǻ)

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saturated sucrose in 250mM WO4

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Protein crystal background

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Water ring shift

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GCN4-p1-N16A trigonal crystal

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crystal backgroundsaturated sucrose

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Water ring shift

http://www.lsbu.ac.uk/water/amorph.html

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Water ring shiftbubbles?

Richard D. Leapman, Songquan Sun, Ultramicroscopy (1995)

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Water ring shiftHydrogen bubbles?

Richard D. Leapman, Songquan Sun, Ultramicroscopy (1995)

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Water ring shiftHydrogen bubbles?

http://www.rcdc.nd.edu/compilations/Rxn.pdf

“The hydrogen atom reacts with organic compounds by abstracting H from saturated molecules and by adding to centers of unsaturation,

for example,

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Damage model system

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Data quality vs phasing quality

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Individual atoms decay at different rates

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Damage changes fluorescence spectrum

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Damage changes fluorescence spectrum

fluence (103 photons/mm2)

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25mM SeMet in 25% glycerol

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Exposing at 12680 eV

Se cross-section at 12680 eV

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fluorescence probe for damage

Absorbed Dose (MGy)

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Wide range of decay rates seen

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Half-dose = 41.7 ± 4 MGy“GCN4” in crystal

Half-dose = 5.5 ± 0.6 MGy8 mM SeMet in NaOH

Protection factor: 660% ± 94%

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“Can we do more

with what we’ve got?”

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Interleaved Schedulingexperiment queue beamline

Minor 30s

Choe 120s

Alberta 60s

Alberta 60s

Choe 30s

Minor 30s

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SuperTongSuper Tong

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SuperTong

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