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Viral load. To estimate the viral load of the samples, we constructed a standard curve by creating serial 1/10 dilutions using the positive control TaqMan 2019-nCoV Control Kit v1 (104 copies/µL) (Thermo Fisher Scientific, Cat. No. A47533). An antilogarithm of the following equation of the line (y = −3.07X + 40.2)/2 was used to calculate the viral load. The Cq captured in the NPSs analysis was replaced in “X”.
Ethics statement. This study was authorized by the Ethical Committee of the University of Santiago of Chile (No. 226/2021) and the Scientific Ethical Committee of the Central Metropolitan Health Service, Ministry of Health, Government of Chile (No. 370/2021) and it follows the Chilean law in force.
3. ResultsA 29-year-old female healthcare worker without comorbidities was diagnosed as COVID-19 positive by RT-qPCR in a nasopharyngeal swap sample (NPSs) during routine control on 8 June 2020 (0806-191) (Cq = 31.85; 2.62 × 102 copies/µL). After 14 days, on 22 June 2020, the patient turned RT-qPCR negative (No Cq). After 137 days, on 23 October 2020, the patient was diagnosed negative with no viral gene amplification (No Cq). The patient was again diagnosed negative 176 days later (14 April 2021), but with a very slight amplification (Cq = 36.33) and determined under the Limit value of Detection (LoD). Then, 83 days later, on 9 July 2021, the patient was diagnosed as negative again (No Cq). Finally, 14 days later, the patient was diagnosed positive for COVID-19 on 23 September 2021 (230921-099), with Cq = 34.03 and a viral load of 5.11 × 101 copies/µL. The symptomatology included rhinorrhea, sore throat, fever, diarrhea, asthenia, and mild headache. The analysis using RNA sequencing of both positive samples (0806-191 and 230921-099) indicated that both sequences belong to the same clade Nextstrain 20A lineage (Figure 1). Importantly, in September 2021, this clade was no longer reported in circulation in Chile. The sequencing of samples 0806-191 and 230921-099 (99.1% and 37.4% coverage of the entire viral genome, with 99.9% and 99.7% identity upon the reference SARS-CoV-2 genome, respectively) showed a 99.21% identity between them. Figure 2 shows a phylogenetic tree with the samples analyzed in this study and three additional samples from clade 20A. We observe that samples 0806-191 and 230921-099 (highlighted in the red box) are part of the same cluster and present a minimal divergence between them. The closest sample is 1506-172, a sample from June 2020, while sample 0308-063 is the furthest, even belonging to the same Clade 20A, from August 2020. The quality of both sequencings is shown in Supplementary Figure S1. The NGS coverage across the SARS-CoV-2 genome of samples 0806-191 and 230921-099 are shown in Supplementary Figures S2 and S3.The genomic sequence analysis for samples 0806-191 identified seven single nucleotide variants (SNVs) and 230921-099 showed fifteen SNVs compared with the reference genome. On the other hand, three deletions were noted for the sample 230921-099 relative to the reference genome. Notably, four SNVs were shared between both samples. Sample 0806-191 had three SNVs not seen in sample 230921-099, whereas sample 230921-099 had eleven SNVs absent in sample 0806-191 (Table 1). Some of these genomic mutations generate amino acid changes, which are shown in Table 1. 4. DiscussionA series of previous works have documented the long-term viral persistence of SARS-CoV-2. Zahn et al., 2021, reported 37 days in patients with mild symptoms. These were clinically discharged from ten days after the onset of symptoms; however, they were still infected with the virus [13]. Other reports have described viral persistence for 42 days with an infective capacity in an asymptomatic patient [14]. In addition, the persistence of SARS-CoV-2 can also be related only to the presence of viral RNA. For example, SARS-CoV-2 RNA shedding has been detected 63, 83, and 106 days after the onset of symptoms in the upper respiratory tract [4,15,16]. Although the persistence of RNA and infectious viruses is generally related to immunosuppressed patients, older adults, or those who developed severe COVID-19 with a high viral load also have a longer persistence time [17,18]. The average infection and viral clearance time do not last more than ten days [2]. However, no report has suggested viral RNA persistence of 386 days.In this study, we sequenced the SARS-CoV-2 genome from the NPSs of a health worker on 8 June 2020, the first year of the pandemic in Chile. The results and analysis indicated that it belonged to the Clade Nextstrain 20A lineage, one of the reported SARS-CoV-2 circulating in Chile. After a series of RT-qPCR tests with negative results under the LoD, the patient tested positive 386 days later (23 September 2021). Genome sequencing analyses indicated the presence of the same initial variant, which interestingly had 0% circulation in Chile in September 2021, according to the epidemiological report of the Ministry of Health of Chile [19], with an identity of 99% between the first and last sequenced sample. Precisely on that date, 55–60% of the circulating variants were Delta (21A), about 20% were Mu (21H), and 20% were Gamma (20J) [19]. Furthermore, all mutations in the second sample could suggest a possible viral genomic change within the same patient at 386 days, with a silent persistence scenario or a long latency or inactivity [20]. In our study, if there was a viral latency period, it was related to viral reactivation. Patients without immunosuppression, who completed their vaccination schedule or were recently infected, have at least 3–5 months of protection before a reinfection period [21,22]. As in our case, the patient completed her vaccination schedule 70 days before the second episode of a positive diagnosis. Previous reports have documented reactivation as a form of viral persistence. For example, one study reported two cases of patients who completed their quarantine with clinical discharge and two negative RT-qPCR tests. However, two weeks later, both tested positive for COVID-19, with a low probability of viral reinfection due to the short time elapsed [23]. Tang X. et al. (2021) pointed out that positive tests within at least 15 days correspond to viral reactivation [24]. If this were the case for viral reactivation, it would be the most extended period reported to date after a latency period.After sequencing both positive samples with 386 days of difference, some important mutations were affected, such as ORF1b:P314L and S:D614G. The first mutation was related to a greater spread and severity of the disease in patients in Europe compared to geographic locations where they were not frequent, such as in Asia [25], while the second is related to an increase in the ineffectiveness of the virus on the cells [26]. This antecedent may be indirectly related to immunological evasion by these viral variants, with a long persistence on the host. Despite this evidence, the reinfection scenario is also possible, considering that there were no consecutive positive results and the broad spectrum of days from one test to another, where natural immunity decreases, causing more new infections [27], independent of no register of that variant in Chile. However, the interesting point is that the patient completed the CoronaVac vaccination schedule 70 days before the second positive COVID-19 diagnosis. Previous studies have documented that complete vaccination of two doses of CoronoVac protects patients for between 3 and 5 months against SARS-CoV-2 infection [22]. This is similar to that indicated by studies for other vaccines that suggest they produce around six months of protection even in elderly patients [28,29].One limitation is the lack of an assay to recover the virus from the analyzed samples and test its infectivity in vitro as previously performed [30]. In addition, the fact that the patient studied is a health worker increases the likelihood of reinfection rather than persistence, even with a virus that has not been reported in Chile for months. Interestingly, the negative results in the middle of the period corresponding to Cq values above the detection limit of the technique, which cannot rule out that the virus is present, especially at a viral Cq of 36.33 (14 April 2021). Another limitation is important to highlight. Although the coverage percentage of the second positive sample meets a high-quality score in sequencing, it has a coverage of 37.4%, which is low compared to the coverage of the first sequence studied (close to 99%). Although both sequencing analyses indicate belonging to the same Clade 20A, it could negatively affect the inferred similarity between the first and second samples collected.On the other hand, persistent SARS-CoV-2 RNA shedding in the respiratory tract is possible. However, we would not have detected fourteen mutations between the first and second samples in this case. Although some tests are missing to ensure viral persistence, such as the verification of infectivity in primary cell cultures or positive RT-qPCR tests as reported in other studies, we could be facing the highest persistence of SARS-CoV-2 reported to date. In addition, the long continuance of infective RNA or SARS-CoV-2 could explain the long-lasting symptoms related to COVID-19 [31]. Our study, together with others reported in the literature, suggests maintaining active genomic surveillance and paying particular attention to cases of viral persistence and their potential incidence in the generation of small outbreaks of local contagion or its eventual capacity to act as a viral reservoir.
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