Showing posts with label Orthology. Show all posts
Showing posts with label Orthology. Show all posts

Thursday, June 28, 2012

wrap-up of the orthology, paralogy, and function symposium at SMBE 2012

I promised some people to write a short summary of the symposium that Matthew Hahn, Marc Robinson-Rechavi, Iddo Friedberg, and I co-organized at SMBE 2012. I particularly enjoyed the symposium and the room was pretty full all the time, despite running in parallel to other interesting topics. I will just write an overall summary without going into too much details of each of the talks, and at the end I would list a number of papers that were commented on the various talks. I have to clarify that this informal wrap-up only contains my own views and has not been consensuated among the organizers. I invite any of the attendants to add comments to highlight some important aspects that I may have missed.

I’ll start by providing a summary of how all this started... which is a rather unusual way, I believe. Indeed the idea of the symposium was born in the blogosphere, in the popular Jonathan Eisen’s Tree of Life blog, where he invited Matthew Hahn to write a special guest post on the “history behind” his paper on testing the orthology conjecture. One of the conclusions from that paper was that paralogous sequences were more similar in function (and in expression patterns) than paralogs, which contradicted one of the major expectations (and assumptions) behind the theories of duplication-driven functional divergence and the strategies for inferring functions from orthologous sequences. That paper had already caused a bit of a turmoil in the orthology community (I remember this was a hot discussion during the last Quest for Orthologs meeting, at Cambridge), and several concerns were being raised about the suitability of comparisons of functional annotations from different species, and the conclusions derived within the paper. Rather rapidly, several people commented on Matt’s post and a lively discussion started (more than 40 comments in total!). The discussion was so interesting that Marc Robinson-Rechavi suggested we should bring this scientific debate in the form of a symposium in one of the upcoming conference, and so is how some of us started to work on this idea.To me it was the first time that I met the other organizers in person.

The symposium started with Eugene Koonin, who nicely introduced the topic of what conjectures could be implied by the definition of orthology, a purely evolutionary one as introduced by Walter Fitch in 1970. He then showed results from his lab that indicate that conjectures tend to hold, but that there may be exception. For instance, the conjecture that orthologs should be best reciprocal hits can be broken by an accelerated evolution in one of the true orthologs, he then showed work from other groups (Sali, Sonnhammer) on the higher conservation of structure and domain architecture in orthologs as compared to paralogs. He criticized the use of GO terms by Hahn and others and argued that one should at variety of data on function to test the conjecture. He presented results from his own group which show higher conservation of expression across species. He concluded that the functional conjecture still holds, although he observed that differences may not be spectacular.  Catherina Gushanski was next talking on changes in gene expression following segmental duplications in mammals. They have produced an impressive dataset of expression from  different tissues in various mammal species. She used that set to ask the question whether duplication was contributing more to divergence than time alone and showed that levels of expression were decreasing in younger duplicates, changes were different across different tissues. She observed no differences between one-to-one orthologs or old duplicate pairs, she also found no differences in terms of tissue specificity in orthologs vs paralogs.  Next on stage was Nicholas Furnham who presented new implementations in FUNTREE that would allow exploring functional evolution on trees. He warned that EC classification is not univocal and that can also have problems for functional comparisons. They have developed “EC-Blast” which directly measures distances between enzymatic reaction based on the molecular structures of substrates and products. Christophe Dessimoz presented results from his recent paper in which they show important biases in GO term annotations, genes from the same species and families tend to be annotated with more similar terms because of experimental biases and author biases. When correcting for this biases, the conjecture still holds. However he admitted that differences were not very big, but still significant. Romain Studer came next. He measured selection and changes in structural stability in orthologs and duplicated genes. He showed that selected sites in paralogs tend to be more clustered in the structure than in orthologs, however he observed no differences in the evolution of stability between orthologs and paralogues. He concluded that differences between paralogues may be smaller than previously thought.

After the coffee break Jianzhi Zhang told us about his work towards probing the orthology conjecture. After giving a try, he gave up of using GO terms because of the many inconsistencies, and the biases observed. He thus reverted to interrogate for conservation of protein-protein interactions using experimentally determined interactions in various yeast species. Unfortunately the many interactions to test experimentally in duplicated proteins prevented him to show a comparison of orthologs and paralogs in this talk. Nevertheless he found that all PPIs tested for orthologs were conserved, even those that seemed not to be, were caused by possible errors in previous large-scale Yeast 2 Hybrid experiments. Alex Nguyen also showed results on the budding yeast gene duplications. They focused on a more specific aspect of function: the presence of short-conserved linear motifs in protein. They found that these were more likely to disappear/diverge after the duplication event, consistent with neo- or sub-functionalization models. We moved to Drosophila with our next speaker, Lev Yamplosky who exploited expression and genomic data from the 12 Drosophila genomes. They showed larger differences in paralogs, as compared to orthologs in rates of divergence, which were also more asymmetrical. They also found that these differences varied for fast- or slow-evolving families. Finally they could also find larger differences in paralogs in terms of expression. Then it was my turn, and I mainly showed our results on comparison of expression patterns in human and mouse. Our experimental design is different from others in that we use topological dating (not sequence divergence) to establish orthologs and paralogs of a similar age, and, second, we compared always orthologs to inter-species paralogs to get rid of species-specific biases in the comparisons. Our results support a larger divergence of paralogues as compared to orthologs in tissue pattern expression. Thanks to our experimental design we could also assess that most of the differences between paralogs were gained shortly after the duplication, linking the duplication event to a big fraction of the divergence. Our last speaker was Paul Thomas who gave an overview of what can you expect and what can you not expect from GO annotations. He also showed progress on how the consortium is trying to model functional evolution through gene families, and how these models can help in the study of the relationship between orthology, paralogy and gene function.


Thus we had a diverse set of talks, most of them focusing on the comparison of different aspects of functional evolution (GO annotations, expression, functional motifs, interactions, divergence, structure) and also using varying experimental designs and species. I would say one of the main conclusion is that GO (and even EC numbers) annotation can be misleading in our ascertainment of functional evolution. My personal view is that most talks showed results consistent with the conjecture, although the level of differences between paralogs and orthologs was sometimes small. Function can be described at multiple levels, and I would expect that functional divergence after duplications may affect only one or few of these. Thus if one experimental design focuses on one of such levels it may be expected to miss divergence in the other ones. In addition those designs that average over all levels will inevitably dilute small but important aspects of functional divergence. In conclusion this is an exciting topic and with the number and variety of groups that are now interested in the topic, I am sure that we will be closer and closer to understanding the complex relationships between orthology, paralogy and functional divergence.

Some links and  papers mentioned during the symposium (I probably miss some):

Abstracts from oral presentations in SMBE, including our symposium http://imgpublic.mci-group.com/ie/PCO/OralAbstracts_Final.pdf


Another post on the orthology conjecture 

Announcement of our symposiyum 


FunTree: a resource for exploring the functional evolution of
structurally defined enzyme superfamilies.
Furnham N, Sillitoe I, Holliday GL, Cuff AL, Rahman SA, Laskowski RA,
Orengo CA, Thornton JM.
Nucleic Acids Res. 2012 Jan;40(Database issue):D776-82
http://nar.oxfordjournals.org/content/40/D1/D776.long


Brawand, D., et. al. The evolution of gene expression levels in mammalian organs. URL

 Forslund et. al. Domain conservation architecture in orthologs

Huerta-Cepas and Gabaldón Assigning duplication events to relative temporal scales in genome-wide studies.

Nehrt et. al. Testing the Ortholog Conjecture with Comparative Functional Genomic Data from Mammals http://www.ploscompbiol.org/article/info%3Adoi%2F10.1371%2Fjournal.pcbi.1002073

Nguyen et. al. Proteome-Wide Discovery of Evolutionary Conserved Sequences in Disordered Regions http://stke.sciencemag.org/cgi/content/abstract/sigtrans;5/215/rs1
 
Peterson et. al. Evolutionary constraints on structural similarity in orthologs and paralogs

Thomas et. al. On the Use of Gene Ontology Annotations to Assess Functional Similarity among Orthologs and Paralogs: A Short Report


Large-scale analysis of orthologs and paralogs under covarion-like and
constant-but-different models of amino acid evolution.
Studer RA, Robinson-Rechavi M.
Mol Biol Evol. 2010 Nov;27(11):2618-27.
http://mbe.oxfordjournals.org/content/27/11/2618.short

How confident can we be that orthologs are similar, but paralogs differ?
Studer RA, Robinson-Rechavi M.
Trends Genet. 2009 May;25(5):210-6.
http://www.sciencedirect.com/science/article/pii/S0168952509000559

Pervasive positive selection on duplicated and nonduplicated vertebrate
protein coding genes.
Studer RA, Penel S, Duret L, Robinson-Rechavi M.
Genome Res. 2008 Sep;18(9):1393-402.
http://genome.cshlp.org/content/18/9/1393.short
 

Friday, January 13, 2012

SMBE 2012 early registration deadline and symposium on orthology

 For those who don't know, the deadline for abstract to the next Society for Molecular Biology and Evolution meeting (Dublin 23-26 June) is approaching. I am co-organizing a workshop on orthology/paralogy and function in collaboration with Marc Robinson-Rechavi, Matthew Hahn, and Iddo Friedberg. Find below an invitation to submit to SMBE2012 and more info on this workshop.

 Hope we can meet in Dublin. 




Dear colleague,

We invite you to submit an abstract to the symposium "The complex relationship between orthology, paralogy, and function" to take place at the meeting of the Society for Molecular Biology and Evolution in Dublin (23rd-26th June, 2012).

The deadline to submit an abstract is the 27th of January 2012, for more details please visit:

http://www.smbe2012.org/scientific-content/call-for-abstracts.html


Symposium "The complex relationship between orthology, paralogy, and function"

Orthology and paralogy have been central concepts in molecular evolution since the distinction was first proposed by Fitch in 1970. A long standing interpretation of this distinction has been that orthologs would be more similar in function than paralogs. Until recently, this interpretation was rarely tested, and in fact rarely explicitly articulated in a testable manner. Yet it has been widely used, from undergraduate teaching, to the practical application of orthology searches for genome annotation. There has been a recent increase of research, seeking to define and test this "ortholog conjecture". Notably, a recent paper (Nehrt et al. 2011, PloS Comput. Biol.) has reported a higher functional similarity of paralogs than of orthologs. This paper has generated much attention and debate, while at the same time recent work on orthologs has shown the vitality and importance of this field to a broad range of applications and questions. Our symposium will feature speakers addressing the fundamental relationships between molecular evolution and biological function, focusing especially on the role of orthology and paralogy in modulating such relationships.

Confirmed speakers: Eugene V. Koonin, Jianzhi Zhang

If you have any question regarding this symposium please do not hesitate to contact us:

Toni Gabaldon , Matthew Hahn , Iddo Friedberg, Marc Robinson-Rechavi

Saturday, September 24, 2011

Special BiB issue on "Orthology and Applications"

 An special issue on "Orthology and Applications"  is out in the journal Briefings in Bioinformatics.

 This special issue has been edited by Christophe Dessimoz and comprises a number of interesting papers including several comprehensive reviews and also original research articles. Some of the papers emerge from efforts on orthology benchmarking and standardization of datasets that were initiated during the first "Quest for Orthologs meeting" in 2009. See this letter reporting from that meeting. We contributed with an article reporting on the comparison of expression patterns between across-species orthologs and paralogs of a similar evolutionary age.

Wednesday, September 21, 2011

On the "orthology conjecture"

 Hi,

 Jonathan Eisen has opened a thread in his blog to discuss the recent paper by Hahn and colleagues on the "ortholog conjecture"  You can read more about the discussions raised by this paper here.

This is what I wrote, a text which I had to split in three pieces in Eisen's blog given the word limit for comments!!

Hi

I appreciate the effort by Matthew Hahnn on explaining the story behind his paper on the so-called "Ortholog conjecture" and on facing some of the criticism. This paper attracted my interest as that of many others that work on or just use orthology. For instance it was chosen by one of my postdocs for our "Journal Club" meeting. And it was discussed during our last "Quest for Orthologs" meeting in Cambridge. I think is raising a necessary discussion and therefore I think is a good paper. This does not mean that I fully agree with the interpretation and conclusions ;-). I hope to modestly contribute to this debate with the following post.

I think one of the causes that this paper has caused so much debate is that the conclusions seem to challenge common practice (inferring function from orthologs), and could be interpreted as the need of changing the strategies of genome annotation. I think, however, that one should interpret carefully these results before start annotating based on paralogous proteins. As I will discuss below one of the problems is that we need to agree in what is the conjecture to then agree in how to test it. I see three main points that can be a source of confusion: i) the issue of what is actually stated by this conjecture, ii) the issue of annotation, and iii) the issue of time

1) What is the "ortholog conjecture"?
Or in other terms, when should we expect orthologs to be more likely to share function than paralogs?. Always? Of course not. All of us would agree that two recently duplicated paralogs are likely to be more similar in function than two distant orthologs, so it is obvious that the conjecture is not simply "orthologs are more similar in function than paralogs". In reality the expectation that orthologs are more likely to be similar in function than paralogs, as least this is how I interpret it, is directly related to the effect that duplication have on functional divergence. If gene duplication has some effect on functional divergence (even in not 100% of the cases), then, given all other things equal (divergence time, story of speciation/duplication events - except fpr the duplication defining the orthologs) one would expect orthologs to be more likely to conserve function.

I think this complexity is not well considered (by many authors, in general). Hahn refeers to the famous review of orthology by Koonin (2005) as the source for the term "ortholog conjecture". However, In that paper this conjecture is discussed always within the context of genes accross two particular species, whether in Hahn's paper it is taken as well to other contexts. Thus, the proper context in which to test this conjecture is only between orthologs and between-species paralogs. As we can see,  Red and purple lines in Hahn paper in figure2 do not show any clear difference.

 Secondly, Koonin was very cautions in his paper, stating that he was referring to "equivalent functions" and not exactly the same "function", correctly implying that the functional contexts would be different in the two different species. This brings me to the next point.

ii) annotation
If the expectation of functional conservation of orthologs refers to a given pair of species, then it makes no sense to test that expectation between paralogs within the same species and orthologs in different species. We were interested in this issue and it took us some effort to control for this "species" influence on the comparison, if you are interested you can read our paper on divergence of expression profiles between orthologs and paralogs (http://www.ncbi.nlm.nih.gov/pubmed/21515902)

As Hahn founds, and it was anticipated by Koonin in that review, there is a huge influence of the "species context", a big constraint of what fraction of the function is shared. Indeed I think is the dominant signal in Hahn's paper. Why is that? One possibility is that the functional context determines the function, I agree. However, we should not discard biases in how different communities working around a model species define processes and function, also the type of experiments that are usually done. For instance experimental inference from KO mutants might be common from mouse, but I guess is not the case in humans (!!). I think this may be having a big influence and might even be the dominant signal in Hahns paper.

Finally function has many levels and I expect subfunctionalization mostly affect lower levels (i.e. more specific). Biases may also
 exist in the level of annotation between species or between families of different size (contributing more or less to the orthologs/paralogs class).

Microarray data are less likely to be subject to biases (although some may exist), at least they should be expected to be free of "human interpretation biases" and so Hahn and colleaguies did well, in my opinion, of testing that dataset. It is important to note that for microarrays and for orthologs and between-species paralogs (which I think is the right frame for testing the conjecture) ortholgs are more likely to share an expression context. This is compatible to what we found in the paper mentioned above, and compatible with the orthology conjecture as stated by koonin (accross species)


iii) time
 Finally, one aspect which I think is fundamental is the notion of "divergence time". Since paralogs can emerge at different time-scales they are composed by a heterogeneous set of protein pairs. Most of comparisons of orthologs and paralogs (Hahn's as well) use sequence divergence as a proxy of time. However this is only a poor estimate, specially when duplications (as in here) are involved (we explored this issue in the past: http://www.ncbi.nlm.nih.gov/pubmed/21075746). This means that for a given divergence time paralogs may have larger sequence divergence than orthologs at the same divergence time, or otherwise (if gene conversion is playing a role). Is the conjecture based on sequence divergence or on divergence time?, I think the initial sense of using orthology to annotate accross species is based on the notion of comparing things at the same evolutionary distance. Thus basing our conclusions on divergence times might not be the proper way of doing it.

CONCLUSIONS AND PROPOSAL FOR RE-STATEMENT

To conclude, and with the intention of going beyond this particular paper,
I would finish by saying that the key to the problem lies on how we interpret the so-called "ortholog conjecture" or how are our expectations on how function evolves. What I get from re-reading Eugene Koonin's paper and how I am using that "assumption" in my day-to-day work is the following:

"Orthologs in two given species are more likely to share equivalent functions than paralogs between these two species"

Therefore the notion of "accross the same pair of species" is important and thus only part of the comparisons made by Hahn and colleagues could directly test this. Looking at the microarray and between-species comparisons data, the conjecture may even hold true!!

I, however, do think that the conjecture as stated above is limited and does not capture the complexity of orthology relationships. Indeed us, and many other researchers, are tuning the confidence of the orthology-based annotation based on whether the orthologs are one-to-one, one-to-many or many-to-many, even when orthologs are "super-orthologs" (with no duplication event in the lineages separating the two orthologs).

Since, the underlying assumption of the ortholog conjecture is that duplication may (not necessarily always) promote functional shifts, then many-to-many orthology relationships will tend to include  orthologous pairs with different functions.

 Thus I would re-state the conjecture (or expectation) as follows:

 "In the absence of additional duplication events in the lineages separating them, two orthologous genes from two given species are more likely to share equivalent functions than two paralogs between these two species"

 This would be a more conservative expectation, which is closer to the current use of orthology-based annotation that tends to identify one-to-one orthologs, rather than any type.

 When duplications start appearing in subsequent lineages thus creating one- or many-to-many orthology relationships, the situation is less clear. Following the assumption that duplications may promote functional divergence. Then one could expand the conjecture by "the more duplications in the evolutionary history separating two genes, the lower the expectation that these two genes would share equivalent functions".

 I wrote this contribution on the fly, and surely there are ways of expressing this in more appropriate terms. In any case I hope I made clear the idea that the conjecture emerges from the notion of duplications causing functional shifts and that our expectations will be clearer if expressed on those terms. This goes on the lines of what Jonathan Eisen mentioned on considering the whole phylogenetic story to annotate genes.

 Under this perspective, the real important hypothesis is that "duplications tend promote functional shifts", I think this is based on solid grounds and has been tested intensively in the past.  

 Cheers,

Toni Gabaldón

http://treevolution.blogspot.com

Friday, March 18, 2011

The father of orthology and paralogy concepts, passes off.

Last week Walter Fitch, a founder of the field of molecular evolution, passed off. He, among many other contributions to the field of Molecular evolution, coined the concepts of orthology and paralogy. Therefore, Fitch's seminal work provide the foundations of a big part of what I am doing now. He left us, but his work will still propel current research in phylogenetics and comparative genomics.