EVOLUTIONARY THEORY CLAIMS THAT LIVING CREATURES TRANSFORM INTO DIFFERENT SPECIES BY MEANS OF MUTATIONS. MODERN SCIENCE, HOWEVER, HAS CLEARLY REVEALED THAT THIS IS A BIG DECEPTION. Why, if species have descended from other species by insensibly fine gradations, do we not everywhere see innumerable transitional forms? Why is not all nature in confusion instead of the species being, as we see them, well defined? But, as by this theory innumerable transitional forms must have existed, why do we not find them embedded in countless numbers in the crust of the earth? Why then is not every geological formation and every stratum full of such intermediate links? Geology assuredly does not reveal any such finely graduated organic chain; and this, perhaps, is the most obvious and gravest objection which can be urged against my theory. Charles Darwin, The Origin of Species, Oxford University Press, New York, 1998, pp. 140, 141, 227 First of all, if living organisms had really transformed into entirely different creatures, there should have been numerous intermediate stages during their transformation process. Random mutations which evolutionists claim to develop living things should have led to such bizarre transitional beings with three brains, four eyes, webbed hands, and much more freakish creatures. Evolutionary theory claims that living creatures transform into different species by means of mutations. Modern science, however, has clearly revealed that this is a big deception ...
The products of natural, and human, selection are all around us. Humans have transformed wild plants into useful crops by selective breeding. Human selection has also produced pets and other domesticated animals with sizes and shapes very different from their wild ancestors. Controlled genetic crosses can be used to identify and locate the genes responsible for artificial selection in domesticated species. Genetic crosses in maize and dogs, for example, suggest that relatively few genetic changes are needed to dramatically transform the shape and structure of plants and animals. Natural selection in wild populations can also generate amazing diversity in a surprisingly short amount of time. Ocean stickleback fish, for example, colonized numerous freshwater streams and lakes produced by retreating glaciers after the last ice age. Differential survival and reproduction under natural selection have generated dramatic changes in morphology, physiology, and behavior as the fish adapted to different food sources, predators, and water conditions. How does nature convert a marine ancestor into diverse freshwater forms? Once again, genetic studies suggest that major evolutionary changes are controlled by a few key genes. Further study of such genes will provide a molecular portrait of how plants and animals have been transformed by artificial and natural selection. www.hhmi.org http
The products of natural, and human, selection are all around us. Humans have transformed wild plants into useful crops by selective breeding. Human selection has also produced pets and other domesticated animals with sizes and shapes very different from their wild ancestors. Controlled genetic crosses can be used to identify and locate the genes responsible for artificial selection in domesticated species. Genetic crosses in maize and dogs, for example, suggest that relatively few genetic changes are needed to dramatically transform the shape and structure of plants and animals. Natural selection in wild populations can also generate amazing diversity in a surprisingly short amount of time. Ocean stickleback fish, for example, colonized numerous freshwater streams and lakes produced by retreating glaciers after the last ice age. Differential survival and reproduction under natural selection have generated dramatic changes in morphology, physiology, and behavior as the fish adapted to different food sources, predators, and water conditions. How does nature convert a marine ancestor into diverse freshwater forms? Once again, genetic studies suggest that major evolutionary changes are controlled by a few key genes. Further study of such genes will provide a molecular portrait of how plants and animals have been transformed by artificial and natural selection. www.hhmi.org http
The products of some natural and human selection are all around us. People have transformed the wild crop profits from selective breeding. Selected Food pets and other domestic animals of very different sizes and shapes of their wild ancestors. Controlled genetic crosses can be used to identify and locate genes that may be applicable to artificial selection in domesticated species. Genetic crosses in maize and dog show, for example, that relatively few geneticThe changes are needed to radically change the shape and structure of plants and animals. can generate natural selection in wild populations as well as surprising diversity in a surprisingly short time. Ocean sticklebacks, for example, colonized rivers and freshwater lakes by several glaciers after the last ice age produced. differential survival and reproduction under natural selection have generated profound changes in morphology, physiology and behavior of fishadapted to different food sources, predators, and water conditions. How does the nature of converting a marine ancestors in various forms of water? Again, genetic studies suggest that major evolutionary changes are controlled by major genes. Further studies of these genes is a molecular picture of how plants and animals through artificial selection and natural have been converted. www.hhmi.org http
The products of natural, and human, selection are all around us. Humans have transformed wild plants into useful crops by selective breeding. Human selection has also produced pets and other domesticated animals with sizes and shapes very different from their wild ancestors. Controlled genetic crosses can be used to identify and locate the genes responsible for artificial selection in domesticated species. Genetic crosses in maize and dogs, for example, suggest that relatively few genetic changes are needed to dramatically transform the shape and structure of plants and animals. Natural selection in wild populations can also generate amazing diversity in a surprisingly short amount of time. Ocean stickleback fish, for example, colonized numerous freshwater streams and lakes produced by retreating glaciers after the last ice age. Differential survival and reproduction under natural selection have generated dramatic changes in morphology, physiology, and behavior as the fish adapted to different food sources, predators, and water conditions. How does nature convert a marine ancestor into diverse freshwater forms? Once again, genetic studies suggest that major evolutionary changes are controlled by a few key genes. Further study of such genes will provide a molecular portrait of how plants and animals have been transformed by artificial and natural selection. www.hhmi.org http