Abstract
Competing hypotheses seek to explain the evolution of oxygenic and anoxygenic processes of photosynthesis. Since chlorophyll is less reduced and precedes bacteriochlorophyll on the modern biosynthetic pathway, it has been proposed that chlorophyll preceded bacteriochlorophyll in its evolution. However, recent analyses of nucleotide sequences that encode chlorophyll and bacteriochlorophyll biosynthetic enzymes appear to provide support for an alternative hypothesis. This is that the evolution of bacteriochlorophyll occurred earlier than the evolution of chlorophyll. Here we demonstrate that the presence of invariant sites in sequence datasets leads to inconsistency in tree building (including maximum-likelihood methods). Homologous sequences with different biological functions often share invariant sites at the same nucleotide positions. However, different constraints can also result in additional invariant sites unique to the genes, which have specific and different biological functions. Consequently, the distribution of these sites can be uneven between the different types of homologous genes. The presence of invariant sites, shared by related biosynthetic genes as well as those unique to only some of these genes, has misled the recent evolutionary analysis of oxygenic and anoxygenic photosynthetic pigments. We evaluate an alternative scheme for the evolution of chlorophyll and bacteriochlorophyll.
MeSH Terms
Bacteriochlorophylls/chemistry
Chlorophyll/chemistry
Codon
Cyanobacteria/chemistry
Nitrogenase/genetics
Oxidoreductases
Photosynthesis
Phylogeny
Plant Proteins/chemistry
Sequence Homology, Nucleic Acid
Chemicals
Bacteriochlorophylls
Codon
Plant Proteins
Chlorophyll
Oxidoreductases
Nitrogenase
nitrogenase reductase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Lockhart P J
Molecular Genetics Unit, School of Biological Sciences, Massey University, Palmerston North New Zealand.
Larkum A W
Steel M
Waddell P J
Penny D
References (14)
14 references, click to expand
-
The evolution of photosynthesis.
Science. 1970 Apr 24;168(3930):438-46
PMID: 4985766
-
Why chlorophyll?
Ann N Y Acad Sci. 1973;206:483-94
PMID: 4518402
-
Evidence against use of bacterial amino acid sequence data for construction of all-inclusive phylogenetic trees.
Proc Natl Acad Sci U S A. 1986 Jan;83(2):217-20
PMID: 3001728
-
Multiple sequence alignment with hierarchical clustering.
Nucleic Acids Res. 1988 Nov 25;16(22):10881-90
PMID: 2849754
-
Evaluation of the maximum likelihood estimate of the evolutionary tree topologies from DNA sequence data, and the branching order in hominoidea.
J Mol Evol. 1989 Aug;29(2):170-9
PMID: 2509717
-
Evidence from nuclear sequences that invariable sites should be considered when sequence divergence is calculated.
Mol Biol Evol. 1989 May;6(3):270-89
PMID: 2622335
-
Microfossils of the Early Archean Apex chert: new evidence of the antiquity of life.
Science. 1993 Apr 30;260:640-6
PMID: 11539831
-
Substitutional bias confounds inference of cyanelle origins from sequence data.
J Mol Evol. 1992 Feb;34(2):153-62
PMID: 1556750
-
Estimating the fraction of invariable codons with a capture-recapture method.
J Mol Evol. 1992 Sep;35(3):253-60
PMID: 1518092
-
Photosynthetic reaction center genes in green sulfur bacteria and in photosystem 1 are related.
Proc Natl Acad Sci U S A. 1992 Sep 1;89(17):8135-9
PMID: 1518838
-
Ribosomal RNA: a key to phylogeny.
FASEB J. 1993 Jan;7(1):113-23
PMID: 8422957
-
Early evolution of photosynthesis: clues from nitrogenase and chlorophyll iron proteins.
Proc Natl Acad Sci U S A. 1993 Aug 1;90(15):7134-8
PMID: 8346226
-
Reconstructing evolutionary trees from DNA and protein sequences: paralinear distances.
Proc Natl Acad Sci U S A. 1994 Feb 15;91(4):1455-9
PMID: 8108430
-
Compositional statistics: an improvement of evolutionary parsimony and its application to deep branches in the tree of life.
J Mol Evol. 1990 Jul;31(1):51-68
PMID: 2116531