Implementation of Bayesian inference MCMC algorithm in phylogenetic analysis of Dipterocarpaceae family

Mirna Yunita, Rachmat Muwardi, Zendi Iklima
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Abstract

Dipterocarpaceae is one of the most prominent plant families, with more than 500 members of species. This family mostly used timber plants for housing, making ships, decking, and primary materials for making furniture. In Indonesia, many Dipterocarpaceae species have morphological similarities and are challenging to recognize in the field. As a result, the classification process becomes difficult and even results are inconsistent when viewed only from the morphology. This research will analyze the phylogenetic tree of Dipterocarpaceae based on the chloroplast matK gene. The aim of the research is to classify the phylogenetics tree of Dipterocarpaceae family using Bayesian inference algorithm. This research used the chloroplast gene instead of morphological characters which has more accurate. The analysis steps are collecting data, modifying the structure sequence name, sequence alignment, constructing tree by using Markov Chain Monte Carlo (MCMC) from Bayesian Inference, and evaluating and analyzing the phylogenetic tree. The results showed that the tree constructed based on the gene is different from the tree based on morphology. Based on the morphological, Dipterocarpus should be in the Dipterocarpeae tribe but based on the similarity of its genes, Dipterocarpus is more similar to the Shoreae tribe.
贝叶斯推理MCMC算法在龙掌科系统发育分析中的实现
双足科是最重要的植物科之一,有500多个成员。这个家族主要使用木材植物来建造房屋、造船、装饰和制作家具的主要材料。在印度尼西亚,许多双龙科物种具有形态学上的相似性,在野外很难识别。因此,如果只从形态学上看,分类过程变得困难,甚至结果不一致。本研究将以叶绿体matK基因为基础,分析双龙科植物的系统发育树。本研究的目的是利用贝叶斯推理算法对龙掌科植物的系统发育树进行分类。本研究采用叶绿体基因代替形态性状,更为准确。分析步骤为收集数据、修改结构序列名称、序列比对、基于贝叶斯推理的马尔可夫链蒙特卡罗(MCMC)构造树、评价和分析系统发育树。结果表明,基于该基因构建的树与基于形态构建的树不同。从形态上看,Dipterocarpus应该属于Dipterocarpeae族,但从基因相似性上看,Dipterocarpus更接近Shoreae族。
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