174
REFERENCES
D.J. Barnes and M.J. Devereux. Variations in skeletal architecture associated
with density banding in the hard coral Porites. J. Exp. Mar. Bioi. Ecol. ,
121:37-54, 1988.
D.J. Barnes and J.M. Lough. The nature of skeletal density banding in scleractinian corals: fine banding and seasonal patterns. J. Exp. Mar. Bioi.
Ecol., 126:119-134, 1989.
D.J. Barnes and J.M. Lough. Systematic variations in the depth of skeleton
occupied by coral tissue in massive colonies of Porites from the Great
Barrier Reef. J. Exp. Mar. Bioi. Ecol., 159:113-128, 1992a.
D.J. Barnes and J.M. Lough. On the nature and causes of density banding in
massive coral skeletons. J. Exp. Mar. Biol.Ecol., 167:91-108, 1992b.
D.J. Barnes, R.B. Taylor, and J.M. Lough. On the inclusion of trace materials
into coral skeletons. Part II. Distortions in skeletal records of annual
climate cycles due to growth processes. J. Exp. Mar. Biol. Ecol., 194:251275,1995·
R.D. Barnes. Invertebrate Zoology. W.B. Saunders Company, Philadelphia,
1974·
E. Ben-Jacob. From snowflake formation to growth of bacteria colonies I:
diffusive patterning in azoic systems. Contemporary Physics, 34:247-273,
1993·
E. Ben-Jacob. From snowflake formation to growth of bacteria colonies II: cooperative formation of complex colonial patterns. Contemporary Physics,
38:205-241, 1997.
G.P. Bidder. The relation of the form of a sponge to its currents. Quart.
J. Microsc. Sci., 67:293-323, 1923.
R.W. Bilger and M.J. Atkinson. Anomalous mass transfer of phosphate on
coral reef flats. Limnol. Oceanogr., 37:261-272, 1992.
R. Black. The effects of grazing by the limpet, Acmaea insessa, on the kelp
Egregia laevigata, in the intertidal zone. Ecology, 57:65-77, 1976.
N.W. Blackstone. Gastrovascular flowand colony development in two colonial
hydroids. Biol. Bull.,190:56-68, 1996.
N.W. Blackstone. A dose -response relationship for experimental heterochrony in a colonial hydroid. Bioi.Bull., 193:47-61, 1997.
N.W. Blackstone. Physiological and metabolic aspects of experimental
heterochrony in colonial hydroids. J. Evol. Biol., 11:421-438, 1998.
N.W. Blackstone. Redox control in development and evolution: evidence from
colonial hydroids. J. Exp. BioI., 202:3541-3553, 1999.
N.W. Blackstone and L.W. Buss. Shape variation in hydractiniid hydroids.
Bioi. Bull., 180:394-4°5, 1991.
N.W. Blackstone and L.W. Buss. Treatment with 2,4-dinitrophenol mimics
ontogenetic and phylogenetic changes in a hydractiniid hydroid. Proc.
Natl. Acad. Sci., 89:4057-4061, 1992.
N.W. Blackstone and L.W. Buss. Experimental heterochrony in hydractiniid
hydroids: why mechanisms matter. J. Evol. Biol., 6:307-327, 1993.
B.A. Bluhm, D. Piepenburg, and K. Iuterzenka, Distribution, standing
stock, growth, mortality and production of Strongylocentrotus pallidus
(Echinodermata: Echinoidea) in the northern Barents Sea. PolarBiol.,
20:325-334, 1998.
D.W.J. Bosence . Ecological studies on two unattached coralline algae from
western Ireland. Palaeontology, 19(2):365-395,1976.
REFERENCES
D.J. Barnes and M.J. Devereux. Variations in skeletal architecture associated
with density banding in the hard coral Porites. J. Exp. Mar. Bioi. Ecol. ,
121:37-54, 1988.
D.J. Barnes and J.M. Lough. The nature of skeletal density banding in scleractinian corals: fine banding and seasonal patterns. J. Exp. Mar. Bioi.
Ecol., 126:119-134, 1989.
D.J. Barnes and J.M. Lough. Systematic variations in the depth of skeleton
occupied by coral tissue in massive colonies of Porites from the Great
Barrier Reef. J. Exp. Mar. Bioi. Ecol., 159:113-128, 1992a.
D.J. Barnes and J.M. Lough. On the nature and causes of density banding in
massive coral skeletons. J. Exp. Mar. Biol.Ecol., 167:91-108, 1992b.
D.J. Barnes, R.B. Taylor, and J.M. Lough. On the inclusion of trace materials
into coral skeletons. Part II. Distortions in skeletal records of annual
climate cycles due to growth processes. J. Exp. Mar. Biol. Ecol., 194:251275,1995·
R.D. Barnes. Invertebrate Zoology. W.B. Saunders Company, Philadelphia,
1974·
E. Ben-Jacob. From snowflake formation to growth of bacteria colonies I:
diffusive patterning in azoic systems. Contemporary Physics, 34:247-273,
1993·
E. Ben-Jacob. From snowflake formation to growth of bacteria colonies II: cooperative formation of complex colonial patterns. Contemporary Physics,
38:205-241, 1997.
G.P. Bidder. The relation of the form of a sponge to its currents. Quart.
J. Microsc. Sci., 67:293-323, 1923.
R.W. Bilger and M.J. Atkinson. Anomalous mass transfer of phosphate on
coral reef flats. Limnol. Oceanogr., 37:261-272, 1992.
R. Black. The effects of grazing by the limpet, Acmaea insessa, on the kelp
Egregia laevigata, in the intertidal zone. Ecology, 57:65-77, 1976.
N.W. Blackstone. Gastrovascular flowand colony development in two colonial
hydroids. Biol. Bull.,190:56-68, 1996.
N.W. Blackstone. A dose -response relationship for experimental heterochrony in a colonial hydroid. Bioi.Bull., 193:47-61, 1997.
N.W. Blackstone. Physiological and metabolic aspects of experimental
heterochrony in colonial hydroids. J. Evol. Biol., 11:421-438, 1998.
N.W. Blackstone. Redox control in development and evolution: evidence from
colonial hydroids. J. Exp. BioI., 202:3541-3553, 1999.
N.W. Blackstone and L.W. Buss. Shape variation in hydractiniid hydroids.
Bioi. Bull., 180:394-4°5, 1991.
N.W. Blackstone and L.W. Buss. Treatment with 2,4-dinitrophenol mimics
ontogenetic and phylogenetic changes in a hydractiniid hydroid. Proc.
Natl. Acad. Sci., 89:4057-4061, 1992.
N.W. Blackstone and L.W. Buss. Experimental heterochrony in hydractiniid
hydroids: why mechanisms matter. J. Evol. Biol., 6:307-327, 1993.
B.A. Bluhm, D. Piepenburg, and K. Iuterzenka, Distribution, standing
stock, growth, mortality and production of Strongylocentrotus pallidus
(Echinodermata: Echinoidea) in the northern Barents Sea. PolarBiol.,
20:325-334, 1998.
D.W.J. Bosence . Ecological studies on two unattached coralline algae from
western Ireland. Palaeontology, 19(2):365-395,1976.
