| Literature DB >> 33836668 |
Ranjan Ramasamy1,2, Vaikunthavasan Thiruchenthooran3, Tibutius T P Jayadas3, Thampoe Eswaramohan3, Sharanga Santhirasegaram3, Kokila Sivabalakrishnan3, Arunasalam Naguleswaran4, Marilyne Uzest5, Bastien Cayrol5, Sebastien N Voisin6, Philippe Bulet6,7, Sinnathamby N Surendran8.
Abstract
BACKGROUND: Aedes aegypti mosquito, the principal global vector of arboviral diseases, lays eggs and undergoes larval and pupal development to become adult mosquitoes in fresh water (FW). It has recently been observed to develop in coastal brackish water (BW) habitats of up to 50% sea water, and such salinity tolerance shown to be an inheritable trait. Genomics of salinity tolerance in Ae. aegypti has not been previously studied, but it is of fundamental biological interest and important for controlling arboviral diseases in the context of rising sea levels increasing coastal ground water salinity.Entities:
Keywords: Aedes aegypti; Arboviral diseases; Climate change; Coastal salinity; Cuticle proteomics; Cuticle ultrastructure; Insecticide resistance; Rising sea levels; Salinity tolerance; Transcriptomics
Year: 2021 PMID: 33836668 PMCID: PMC8034070 DOI: 10.1186/s12864-021-07564-8
Source DB: PubMed Journal: BMC Genomics ISSN: 1471-2164 Impact factor: 3.969
Cuticle Protein Genes with Transcripts showing FC > 100 in BW Ae. aegypti L4
| Gene Category | Carcass | Anal Papilla | Gut | |||
|---|---|---|---|---|---|---|
| No. of Genes | No. of Transcripts | No. of Genes | No. of Transcripts | No. of Genes | No. of Transcripts | |
| 63 | 70 | 51 | 61 | 48 | 54 | |
| 1 | 1 | 0 | 0 | 2 | 2 | |
| 22 | 25 | 15 | 15 | 8 | 8 | |
| 0 | 0 | 1 | 1 | 8 | 8 | |
| 0 | 0 | 2 | 3 | 3 | 5 | |
| 0 | 0 | 0 | 0 | 1 | 1 | |
| 8 | 8 | 0 | 0 | 0 | 0 | |
Top Ten Cuticle Protein Transcripts by RPM in Carcass, Anal Papilla and Gut
| 1626 | 0.6 | Ribosomal S7 | na | 2561 | 0.6 | Ribosomal S7 | na |
| 1725 | 143 | AAEL015163a | RR-2 | 1592 | 0.6 | AAEL013512a | RR-1 |
| 1626 | 351 | AAEL009784a | RR-2 | 1564 | 0.4 | AAEL013520a | RR-1 |
| 1522 | 708 | AAEL009801a | RR-2 | 1110 | 0.6 | AAEL003239b | RR-1 |
| 996 | 28 | AAEL003049b | RR-1 | 721 | 0.9 | AAEL011444a | RR-1 |
| 963 | 19 | AAEL009793a | RR-2 | 221 | 0.3 | AAEL013517a | RR-1 |
| 958 | 186 | AAEL004780a | RR-2 | 67 | 0.9 | AAEL002110b | RR-2 |
| 931 | 0.6 | AAEL013512a | RR-1 | 63 | 5 | AAEL008289a | RR-1 |
| 700 | 593 | AAEL004746 | RR-2 | 56 | 0.1 | AAEL009796a | RR-2 |
| 659 | 0.9 | AAEL011444a | RR-1 | 50 | 19 | AAEL009793a | RR-2 |
| 614 | 0.6 | AAEL003239b | RR-1 | 43 | 1 | AAEL002231 | CPLCG |
| 1629 | 0.6 | Ribosomal S7 | na | 2642 | 0.6 | Ribosomal S7 | na |
| 1062 | 0.7 | AAEL013512a | RR-1 | 1594 | 0.7 | AAEL013512a | RR-1 |
| 1023 | 37 | AAEL011504a | RR-2 | 1585 | 0.6 | AAEL011444a | RR-1 |
| 921 | 0.6 | AAEL011444a | RR-1 | 1553 | 0.6 | AAEL013520a | RR-1 |
| 879 | 0.6 | AAEL013520a | RR-1 | 1183 | 0.7 | AAEL003239b | RR-1 |
| 793 | 0.7 | AAEL003239b | RR-1 | 1095 | 0.1 | AAEL003242a | RR-1 |
| 635 | 269 | AAEL004746 | RR-2 | 460 | 0.1 | AAEL002211b | CPLCG |
| 543 | 1392 | AAEL004770 | RR-2 | 334 | 0.5 | AAEL003049b | RR-1 |
| 431 | 141 | AAEL004745 | RR-2 | 250 | 0.1 | AAEL002229 | CPLCG |
| 203 | 520 | AAEL004772 | RR-2 | 198 | 0.04 | AAEL002191a | CPLCG |
| 193 | 140 | AAEL004751 | RR-2 | 145 | 0.3 | AAEL013517a | RR-1 |
| 1911 | 0.7 | Ribosomal S7 | na | 2657 | 0.7 | Ribosomal S7 | na |
| 1230 | 1.3 | AAEL013512a | RR-1 | 1462 | 0.4 | AAEL013520a | RR-1 |
| 802 | 1.5 | AAEL003239b | RR-1 | 919 | 1.3 | AAEL013512a | RR-1 |
| 575 | 0.4 | AAEL013520a | RR-1 | 555 | 1.5 | AAEL003239b | RR-1 |
| 443 | 1.1 | AAEL011444a | RR-1 | 400 | 1.1 | AAEL011444a | RR-1 |
| 212 | 171 | AAEL004770 | RR-2 | 49 | 0.3 | AAEL013517a | RR-1 |
| 204 | 44 | AAEL004746 | RR-2 | 34 | 0.1 | AAEL003242a | RR-1 |
| 173 | 199 | AAEL009001b | RR-2 | 28 | 0.2 | AAEL015163a | RR-2 |
| 135 | 52 | AAEL004745 | RR-2 | 25 | 0.1 | AAEL009801a | RR-2 |
| 68 | 93 | AAEL000085 | CPX | 14 | 0.7 | AAEL007194a | RR-1 |
| 66 | 11 | AAEL011504a | RR-2 | 14 | 0.5 | AAEL009784a | RR-2 |
Legend to Table 2: rpm reads per million mapped reads, FC fold change in rpm in BW compared to FW, na not applicable, S7 is the cytoplasmic 40S ribosomal protein coded for by its single transcript AAEL009496-RA; a detected by proteomic analysis in both shed L4 BW and FW cuticles; bdetected by proteomic analysis only in shed L4 BW cuticles
Fig. 1Cuticle ultrastructure by transmission electron microscopy. Legend Transmission electron micrographs of the cuticles in adult abdomen (a,b), L4 larval abdomen (d,e) and L4 anal papillae (g,h) from brackish (a,d,g) and fresh water (b,e,h) Ae. aegypti. Arrowheads mark the external surface. Box plots show the range (whiskers), median (horizontal line), and 25th and 75th percentile of measured thicknesses (box) of the whole cuticle of adult abdomen (c), L4 larval abdomen (f) and L4 anal papillae (i). n = total number of measurements (at least ten measurements per insect). *** p-value< 0.001 by the two-tailed Student’s t test. BW, brackish water; FW, fresh water; en, endocuticle; ex, exocuticle. Black scale bars represent 500 nm. White bars in a,b,d and e delineate the endocuticle and exocuticle