Search bioRxiv⌕ Search

Biology subjects

Naz, S.

Publications and source records attributed to Naz, S..

4 recordsLinked to original sources

De novo Genome Assembly, Functional Annotation and SSR Mining of Citrus reticulata (Kinnow) from Pakistan

Citrus reticulata (Blanco) fruit is native to South East Asia which owns many of the nutritional, medicinal and economic advantages, locally known as "Kinnow" and one of the priced mandarin varieties (Dancy, Fuetrells Early and Honey) of Citrus genera renowned for its exclusive taste, vitamin richness, thin peel, long shelf-life and seedless characteristics in Pakistan. However, genetic improvement and breeding strategies of this valued variety are lacking due to the in-housed insufficient genomic and technical resources. Therefore, the current research was initiated to provide the base-line de-novo genome assembly of C. reticulata (seedless kinnow) at a depth of 151x with Illumina paired-end short-read sequencing technology using HiSeq 2500. Whole-genome sequencing resulted in 139,436,350 raw reads ([~]20.09 GB) of data, however, after removing the low-quality reads (1.08%), duplicated sequences (10.5%) and Illumina adaptors, 137,901,462 clean reads were obtained with ([~]18.87 GB) of clean data which was further used for downstream variant calling analysis. In total, 348,861 scaffolds were generated with N50 value of 4827 which constitute 263,018,9 contigs ranging from 71-36,213 with total of 179,984,763 nucleotides. The GC content of the final draft assembly at 71-mer was 34.1%. Moreover, annotation was performed with "Hayai-Annotation Plants" tool which marked the whole-genome mapping with three main functional databases of interpro, Pfam and gene ontology. Additionally, in-silico identification of 111,032 Simple Sequence Repeats (SSR) was also accomplished with the help of GMATA tool, which may be used for further screening and genetic improvement of the citrus varieties by means of this current assembly as a resource of local reference genome.

bioinformatics↗

Whole-Genome Sequencing and Variant Discovery of Citrus reticulata 'Kinnow' from Pakistan

Citrus is a source of many nutritional and medicinal advantages, which is cultivated worldwide with major citrus groups of sweet oranges, mandarins, grapefruits, kumquats, lemons and limes. Pakistan produces all of its major citrus groups with mandarin (Citrus reticulata) being the prominent group that includes local commercial cultivars such as Feutrals Early, Dancy, Honey and Kinnow. The present study was designed to understand the genetic architecture of this unique variety of Citrus reticulata -Kinnow. The whole-genome resequencing and variant calling was performed to map the genomic variability that might be responsible for its particular characteristics like taste, seededness, juice content, thickness of peel and its shelf-life. A total of 139,436,350 raw sequence reads using Illumina platform were generated with 20.9 Gb data in Fastq format having 98% effectiveness and 0.2% base call error rate. Overall, a total of 3,503,033 SNPs, 176,949 MNPs, 323,287 INS and 333,083 DEL were identified using GATK4 variant calling pipeline against Citrus clementina as a reference genome. Further, g:Profiler bioinformatics tool was applied for annotating the newly found variants, harbor genes/transcripts and their involved pathways. A total of 73,864 transcripts harbors 4,336,352 variants, most of the observed variants were predicted in non-coding regions and 1,009 transcripts were found well annotated by different databases. Out of total aforementioned transcripts, 588 involved in biological processes, 234 in molecular functions and 167 transcripts involved in cellular components in Citrus reticulata. In a nutshell, 18,153 high-impact variants and 216 genic-variants found in the current study which may be used for marker assisted breeding programs of Kinnow to identify this particular variety among others and to propagate its valued traits to improve the contemporary citrus varieties as well. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=100 SRC="FIGDIR/small/519411v1_ufig1.gif" ALT="Figure 1"> View larger version (28K): org.highwire.dtl.DTLVardef@1568ae1org.highwire.dtl.DTLVardef@b7d20eorg.highwire.dtl.DTLVardef@3fc3a9org.highwire.dtl.DTLVardef@46ba89_HPS_FORMAT_FIGEXP M_FIG C_FIG

genetics↗

NHA1 is a cation/proton antiporter essential for the water-conserving functions of the rectal complex in Tribolium castaneum

More than half of all extant metazoan species on earth are insects. The evolutionary success of insects is intrinsically linked with their ability to osmoregulate, suggesting that they have evolved unique physiological mechanisms to maintain water balance. In beetles (Coleoptera)--the largest group of insects--a specialized rectal ( cryptonephridial) complex has evolved that recovers water from the rectum destined for excretion and recycles it back to the body. However, the molecular mechanisms underpinning the remarkable waterconserving functions of this system are unknown. Here, we introduce a transcriptomic resource, BeetleAtlas.org, for red flour beetle Tribolium castaneum, and demonstrate its utility by identifying a cation/H+ antiporter (NHA1) that is enriched and functionally significant in the Tribolium rectal complex. NHA1 localizes exclusively to a specialized cell type, the leptophragmata, in the distal region of the Malpighian tubules associated with the rectal complex. Computational modelling and electrophysiological characterization in Xenopus oocytes show that NHA1 acts as an electroneutral K+/H+ antiporter. Furthermore, genetic silencing of Nha1 dramatically increases excretory water loss and reduces organismal survival during desiccation stress, implying that NHA1 activity is essential for maintaining systemic water balance. Finally, we show that Tiptop, a conserved transcription factor, regulates NHA1 expression in leptophragmata and controls leptophragmata maturation, illuminating the developmental mechanism that establishes the novel functions of this cell. Together, our work provides the first insights into the molecular architecture underpinning the function of one most powerful water-conserving mechanisms in nature, the beetle rectal complex. Significance StatementBeetles are the largest group of insects, inhabiting a wide range of habitats on earth. Unique adaptations in overcoming water stress is critical to their success, yet the mechanisms underpinning this ability are unknown. Using genetics, electrophysiology, imaging and behavioral studies we show that a cation/H+ (NHA1) transporter is exclusively localized to specialized cell type, the leptophragmata, in the Malpighian tubules associated with the rectal complex. Ion transport functions of NHA1 in leptophragmata underpin the movement of water from the rectum, from where it would be destined for excretion, to the Malpighian tubule and then recycled back to the body. This water recovery capability of rectal complex is essential for maintaining systemic water balance in beetles. This work provides the first insight into to the molecular architecture of one of most powerful water-conservation mechanisms in biology, and provides an important clue to the ecological and evolutionary success of the beetles.

systems biology↗

GWAS and functional studies implicate a role for altered DNA repair in the evolution of drug resistance in Mycobacterium tuberculosis

The emergence of drug resistance in Mycobacterium tuberculosis (Mtb) is alarming and demands in-depth knowledge for timely diagnosis. We performed genome-wide association analysis (GWAS) using 2237 clinical strains of Mtb to identify novel genetic factors that evoke drug resistance. In addition to the known direct targets, for the first time, we identified a strong association between the mutations in the DNA repair genes and the multidrug-resistant phenotype. To evaluate the impact of variants identified in the clinical samples in the evolution of drug resistance, we utilized knockouts and complemented strains in Mycobacterium smegmatis (Msm) and Mtb. Results show that variant mutations abrogated the function of MutY and UvrB. MutY variant showed enhanced survival compared with wild-type (Rv) when the Mtb strains were subjected to multiple rounds of ex vivo antibiotic stress. Notably, in an in vivo Guinea pig infection model, the MutY variant outcompeted the wild-type strain. Collectively, we show that novel variant mutations in the DNA repair genes abrogate their function and contribute to better survival under antibiotic/host stress conditions.

microbiology↗