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Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity Rémi Daigle @RemiDaigle

Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

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Page 1: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Optimizing Marine Protected Area Networks: The effects of climate change on

larval dispersal and connectivity

Rémi Daigle

@RemiDaigle

Page 2: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Outline:● Background and motivation

● My PhD research:

○ Swimming behaviours vs invertebrate larval distribution

● Postdoctoral Research:

○ Evaluation of larval behaviour

○ Sea cucumber larval dispersal

○ MPA optimization

○ BEST-MPA

● Future Directions

● Discussion!

Page 3: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity
Page 4: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

But the new Canadian Government is pretty awesome...In the mandate letter from our PM to

DFO:

“Work with the Minister of Environment

and Climate Change to increase the

proportion of Canada’s marine and

coastal areas that are protected – to five

percent by 2017, and ten percent by 2020

– supported by new investments in

community consultation and science.”

Page 5: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Meeting deadlines VS ‘paper parks’

Page 6: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Convenvention on Biological DiversityGuidelines in the CBD:

● Ecologically and biologically

significant areas

● Representativity

● Connectivity

● Replicated ecological features

● Adequate and viable sites

Grad-student Remi’s guidelines

● Connectivity

● Other stuff...

Page 7: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

In the beginning...

Page 8: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Being small larvae in a big ocean

CURRENT

CURRENT

Page 9: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

You just can’t put a GPS on larvae!

Page 10: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Vertical distribution vs Temperature● Behaviour varies by species

● Observing behaviours enables

modelling!

Page 11: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Spatial co-localization

Page 12: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Patch size = tidal excursion

Page 13: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

What is more important?Bio-physical interactions:

● Larval swimming behaviours

● Planktonic larval duration

● Larval release site

● Timing

Page 14: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Larval dispersal can be modelled!

Page 15: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Physics > Biology (and that hurts me)

Page 16: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Enter: charismatic megafauna

Giant California sea cucumber

Page 17: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

The ‘cucumber’ questions:How does climate change affect larval dispersal?

● Dispersal distance?

● Degree of connectivity?

● Connectivity patterns

Identify “hotspots” of climate change sensitivity

● Limited to physical dispersal process

Page 18: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

The physical model:Covers entire BC coast and a bit of USA

Years:

● Present: 1998-2007

● Future: 2068-2077 (labelled 2098-2107)

Page 19: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

The physical model:Covers entire BC coast and a bit of USA

Years:

● Present: 1998-2007

● Future: 1968-1977

Series:

● A: genetic sites (daily: June-July)

Page 20: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

The physical model:Covers entire BC coast and a bit of USA

Years:

● Present: 1998-2007

● Future: 1968-1977

Series:

● A: genetic sites (daily: June-July)

● G: Habitat grid sites (daily: June-July)

Page 21: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

The physical model:Covers entire BC coast and a bit of USA

Years:

● Present: 1998-2007

● Future: 1968-1977

Series:

● A: genetic sites (daily: June-July)

● G: Habitat grid sites (daily: June-July)

● S: seasonal grid sites (bi-weekly: Jan-Aug)

Page 22: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Biology wins!

Page 23: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: Dispersal distance mapped

Page 24: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: Connected nodes mapped

Page 25: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: ‘infomap’ clustering

Page 26: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: ‘infomap’ clustering

Page 27: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: ‘infomap’ clustering

Page 28: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Connectivity: ‘infomap’ clustering

Page 29: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Descriptive summary● Dispersal distance will be more affected by temperature than by flow regime

● Changes in flow regime will increase the level of population connectivity

● Hotspots:

○ Between southern Haida Gwaii - Mainland

○ West coast Vancouver Island

○ Maybe northern SOG

Page 30: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

BCMCAEcological:

● Seabirds

● Fish

● Invertebrates

● Marine mammals

● Physical

● Plants

Page 31: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

BCMCAHuman Use:

● Commercial fishing

● Sport Fishing

● Ocean energy

● Shipping

● Tenures

● Tourism & Recreation

Page 32: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

MPA planningCompare the effectiveness of MPA networks:

● Status quo

● Designed from human+ecological data from BCMCA MARXAN analysis

● BCMCA+connectivity layer

Include spatially variable connectivity information into MARXAN analysis

Page 33: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

So what!? BEST-MPA

Page 34: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Good Planning = Economic Benefit!

Page 35: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Future work: Putting the multi- in multi-approach● Does the genetic data support the biophysical model results? (Amanda Xuereb)

● Can we formulate theory that describes population persistence? (Ridouan Bani)

○ Negative covariance in connectivity = negative covariance in population fluctuations

● Can we include connectivity in a meaningful way into MPA planning

(MARXAN)? (Cassidy D’Aloia)

● Expand connectivity coverage for Atlantic Canada, and complete BEST-MPA case

study in BC (me)

Page 36: Optimizing Marine Protected Area Networks: The effects of climate change on larval dispersal and connectivity

Questions/DiscussionFocus on physical aspects of connectivity appropriate?

How to measure ‘success’ of connectivity?

Should MPA’s be climate refugia, or pathways to cooler climates?

How can (Canadian) scientist best position their science to provide useful advice?