Daniel Davis, MD UCSD Center for Resuscitation Science New Frontiers in Resuscitation Science.

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Daniel Davis, MD UCSD Center for Resuscitation Science New Frontiers in Resuscitation Science

Transcript of Daniel Davis, MD UCSD Center for Resuscitation Science New Frontiers in Resuscitation Science.

Page 1: Daniel Davis, MD UCSD Center for Resuscitation Science New Frontiers in Resuscitation Science.

Daniel Davis, MD

UCSD Center for Resuscitation Science

New Frontiers inResuscitation

Science

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Key Concepts

• Compressions

• Ventilations

• Pressors

• PetCO2

• Post-resuscitative care

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1. Optimal Compressions

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The Primary Directive

Chest compressions should be performed

from the moment of arrest until return of

spontaneous circulation is assured.

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Kern (2002) Circulation

Prime the Pump!

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Christenson (2009) Circulation

Stay on the chest!

* Adjusted for: age, gender, bystander CPR, public location, response time, compression rate

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Compression Interruptions

• Initiating compressions

• Rhythm analysis

• Shock sequence

• Pulse check

• Intubation

• Vascular access

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Bystander CPR

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ECG Filtration

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Return of Spontaneous Circulation

Electrical(HR)

Mechanical(PetCO2)

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Stiell et al (2008) AHA Scientific Sessions

Deeper Compressions

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Aufderheide (2005) Resuscitation

Good Recoil

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Rate

0 to 80 81 to 120 121+ (N=65) (N=478) (N=122)

38 mm 49% 44% 69%

38-51 mm 28% 44% 30%

>51 mm 23% 12% 2%

Depth

Stiell et al (2008) AHA Scientific Sessions

Rate vs Depth

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CPR Process

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Code # 79265 (11/28/12) Code Leader: Brendan Daly, MD Recorded CPR time: 5 minutes Type of arrest: VF/VT Minute Chest Compression

Fraction (goal >90%)

Average Compression Rate (goal 100)

Average Compression

Depth (inches) (goal 2-4 inches)

1 100% 118 3.02 2 73% 107 2.98 3 82% 115 3.10 4 85% 121 2.85 5

Defibrillations: 1 Pre-shock pause (goal <3 seconds) 14 seconds Post-shock pause (goal < 6 seconds) 3 seconds Use of End Tidal Carbon Dioxide: Yes Other comments: Good compression rate and depth, great use of EtCO2. Summary: (selected strips below)

Defibrillation:

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Results• Chest compression fraction 91%

• Compression rate 123/min

• Compression depth 2.6 inches

• Pre-shock pause 2.6 sec

• Post-shock pause 3.6 sec

• Perfusion check 4.3 sec

• Ventilation rate 9.7/min

• PetCO2 15.3 mmHg

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What if we’re wrong?

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2. Controlled ventilation

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Kern (2002) Circulation

Prime the Pump!

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Continuous Chest Compressions with Synchronous Ventilations (10:1)

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3. Pressor Therapy

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Pressors

Mader (2008) Resuscitation

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Hagihara (2012) JAMA

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*

*

*

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Vasopressin?

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Fluids?

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4. PetCO2 in resuscitation

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Lung Perfusion in ShockPaCO2

40 mmHgPaCO2

40 mmHg

PetCO237 mmHgPetCO2

37 mmHgPetCO2

29 mmHgPetCO2

29 mmHgPetCO2

21 mmHgPetCO2

21 mmHg

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PetCO2 MonitoringPetCO2 Monitoring

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PetCO2 Associations

• Initial PetCO2 α ROSC

• Pre-shock PetCO2 α ROSC for VF

• Rise in PetCO2 α ROSC

• Initial PetCO2 α arrest etiology

• Compression depth/patient wt α PetCO2

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5. Post-resuscitation care

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Hyperventilation: Three Flavors

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Cerebral Perfusion During Shock

0

5

10

15

20

25

30

35

40

45

RR6 RR12 ETCO2

P = .004 v 12P = .004 v 12

mL/100 gm/min

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Ventilation in Resuscitation

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Rapid, Shallow Breaths?95% CI for the regression estimate

0 20 40 60 800

500

1000

1500

Est TV

VR

95% CI for the regression estimate

0 20 40 60 800

500

1000

1500

Est TV

VR

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Intrathoracic Pressure

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Evidence for Hypothermia?

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Hypothermia After Cardiac Arrest Study Group (2002) NEJM

Hypothermia vs. Normothermia?

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When should we cool?

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no cooling

33oC

0 10 20 30 40 50 60 % survival

36%

53%

no cooling

33oC

26%

49%

36oC

33oC

52%

50%

Post-Arrest Hypothermia HACA

Bernard

TTM

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How should we cool?

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How should we cool?

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Current U.S. Benchmark

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Conclusions

• The opportunity is staggering

• Compressions

• Technology

• Post-resuscitative care

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