Forestry Ideas · 2026 · Vol. 32 · No. 1
Leaf chlorophyll content and foliar damage in relation to biomass accumulation of Sonneratia caseolaris in the Segara Anakan Mangrove Lagoon, Indonesia
Authors
Dewi Kresnasari (1,5)*, Muhammad Zainuri (2), Max Rudolf Muskananfola (3),
and Rudhi Pribadi (4)
Affiliation
1. Aquatic Resource Management Doctoral Program, Faculty of Fisheries and Marine Sciences,
Diponegoro University, Semarang 50275, Indonesia. *E-mail: dkresnasari@gmail.com
2. Department of Oceanography, Faculty of Fisheries and Marine Sciences, Diponegoro
University, Semarang 50275, Indonesia. E-mail: muhammadzainuri1962@gmail.com
3. Department of Aquatic Resources, Faculty of Fisheries and Marine Sciences, Diponegoro
University, Semarang 50275, Indonesia. E-mail: maxmuskananfola@lecturer.undip.ac.id
4. Department of Marine Science, Faculty of Fisheries and Marine Sciences, Diponegoro
University, Semarang 50275, Indonesia. E-mail: rudhipribadi@gmail.com
5. Fisheries Science Study Program, Faculty of Science and Technology, Nahdaltul Ulama
Purwokerto University, Purwokerto 53145, Indonesia.
Abstract
Mangrove biomass production is influenced by both structural attributes and leaf level physiological processes. However, empirical field studies linking these components at the stand scale remain limited. This study explored associations among leaf chlorophyll content, foliar damage, biomass accumulation of Sonneratia caseolaris (L.) Engl., and sediment nutrient conditions in the Segara Anakan Mangrove Lagoon, Indonesia. Three sampling stations were established, and field surveys were conducted from May to June 2023. Aboveground and belowground biomass were estimated using established species-specific allometric equations. Chlorophyll concentrations were determined spectrophotometrically, and foliar damage was quantified by the Bioleaf application on a smartphone. Positive associations were observed between biomass estimates and chlorophyll concentrations in both intact and partially damaged leaves, reflecting potential photosynthetic capacity. However, correlation analyses were based on plot-level data (n = 15) with limited replication. Therefore, the results should be interpreted as indicative ecological patterns rather than statistical evidence of causal relationships. Stations with relatively higher biomass also exhibited higher sediment nitrogen concentrations, suggesting a possible role of nutrient availability in supporting structural growth. Despite a high proportion of visibly damaged leaves across stations, measurable chlorophyll levels were maintained, indicating that partial tissue damage does not necessarily correspond to complete physiological impairment. Overall, the findings suggest that leaf-level physiological indicators may contribute to understanding spatial variability in mangrove biomass when interpreted within ecological and methodological constraints. Integrating structural and physiological measurements may support improved assessment of mangrove condition in dynamic estuarine environments.
Received: 24 December 2025 / Accepted: 06 March 2026 / Available online: 12 March 2026
Open Access: This work is distributed under the Creative Commons Attribution 4.0 License.